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Created: 2026-02-14 07:12

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/src/stb/stb_image.h
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/* stb_image - v2.30 - public domain image loader - http://nothings.org/stb
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                                  no warranty implied; use at your own risk
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   Do this:
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      #define STB_IMAGE_IMPLEMENTATION
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   before you include this file in *one* C or C++ file to create the implementation.
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   // i.e. it should look like this:
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   #include ...
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   #include ...
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   #include ...
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   #define STB_IMAGE_IMPLEMENTATION
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   #include "stb_image.h"
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   You can #define STBI_ASSERT(x) before the #include to avoid using assert.h.
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   And #define STBI_MALLOC, STBI_REALLOC, and STBI_FREE to avoid using malloc,realloc,free
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   QUICK NOTES:
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      Primarily of interest to game developers and other people who can
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          avoid problematic images and only need the trivial interface
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      JPEG baseline & progressive (12 bpc/arithmetic not supported, same as stock IJG lib)
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      PNG 1/2/4/8/16-bit-per-channel
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      TGA (not sure what subset, if a subset)
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      BMP non-1bpp, non-RLE
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      PSD (composited view only, no extra channels, 8/16 bit-per-channel)
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      GIF (*comp always reports as 4-channel)
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      HDR (radiance rgbE format)
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      PIC (Softimage PIC)
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      PNM (PPM and PGM binary only)
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      Animated GIF still needs a proper API, but here's one way to do it:
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          http://gist.github.com/urraka/685d9a6340b26b830d49
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      - decode from memory or through FILE (define STBI_NO_STDIO to remove code)
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      - decode from arbitrary I/O callbacks
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      - SIMD acceleration on x86/x64 (SSE2) and ARM (NEON)
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   Full documentation under "DOCUMENTATION" below.
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LICENSE
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  See end of file for license information.
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RECENT REVISION HISTORY:
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      2.30  (2024-05-31) avoid erroneous gcc warning
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      2.29  (2023-05-xx) optimizations
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      2.28  (2023-01-29) many error fixes, security errors, just tons of stuff
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      2.27  (2021-07-11) document stbi_info better, 16-bit PNM support, bug fixes
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      2.26  (2020-07-13) many minor fixes
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      2.25  (2020-02-02) fix warnings
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      2.24  (2020-02-02) fix warnings; thread-local failure_reason and flip_vertically
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      2.23  (2019-08-11) fix clang static analysis warning
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      2.22  (2019-03-04) gif fixes, fix warnings
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      2.21  (2019-02-25) fix typo in comment
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      2.20  (2019-02-07) support utf8 filenames in Windows; fix warnings and platform ifdefs
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      2.19  (2018-02-11) fix warning
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      2.18  (2018-01-30) fix warnings
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      2.17  (2018-01-29) bugfix, 1-bit BMP, 16-bitness query, fix warnings
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      2.16  (2017-07-23) all functions have 16-bit variants; optimizations; bugfixes
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      2.15  (2017-03-18) fix png-1,2,4; all Imagenet JPGs; no runtime SSE detection on GCC
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      2.14  (2017-03-03) remove deprecated STBI_JPEG_OLD; fixes for Imagenet JPGs
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      2.13  (2016-12-04) experimental 16-bit API, only for PNG so far; fixes
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      2.12  (2016-04-02) fix typo in 2.11 PSD fix that caused crashes
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      2.11  (2016-04-02) 16-bit PNGS; enable SSE2 in non-gcc x64
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                         RGB-format JPEG; remove white matting in PSD;
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                         allocate large structures on the stack;
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                         correct channel count for PNG & BMP
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      2.10  (2016-01-22) avoid warning introduced in 2.09
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      2.09  (2016-01-16) 16-bit TGA; comments in PNM files; STBI_REALLOC_SIZED
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   See end of file for full revision history.
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 ============================    Contributors    =========================
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 Image formats                          Extensions, features
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    Sean Barrett (jpeg, png, bmp)          Jetro Lauha (stbi_info)
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    Nicolas Schulz (hdr, psd)              Martin "SpartanJ" Golini (stbi_info)
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    Jonathan Dummer (tga)                  James "moose2000" Brown (iPhone PNG)
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    Jean-Marc Lienher (gif)                Ben "Disch" Wenger (io callbacks)
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    Tom Seddon (pic)                       Omar Cornut (1/2/4-bit PNG)
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    Thatcher Ulrich (psd)                  Nicolas Guillemot (vertical flip)
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    Ken Miller (pgm, ppm)                  Richard Mitton (16-bit PSD)
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    github:urraka (animated gif)           Junggon Kim (PNM comments)
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    Christopher Forseth (animated gif)     Daniel Gibson (16-bit TGA)
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                                           socks-the-fox (16-bit PNG)
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                                           Jeremy Sawicki (handle all ImageNet JPGs)
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 Optimizations & bugfixes                  Mikhail Morozov (1-bit BMP)
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    Fabian "ryg" Giesen                    Anael Seghezzi (is-16-bit query)
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    Arseny Kapoulkine                      Simon Breuss (16-bit PNM)
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    John-Mark Allen
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    Carmelo J Fdez-Aguera
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 Bug & warning fixes
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    Marc LeBlanc            David Woo          Guillaume George     Martins Mozeiko
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    Christpher Lloyd        Jerry Jansson      Joseph Thomson       Blazej Dariusz Roszkowski
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    Phil Jordan                                Dave Moore           Roy Eltham
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    Hayaki Saito            Nathan Reed        Won Chun
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    Luke Graham             Johan Duparc       Nick Verigakis       the Horde3D community
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    Thomas Ruf              Ronny Chevalier                         github:rlyeh
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    Janez Zemva             John Bartholomew   Michal Cichon        github:romigrou
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    Jonathan Blow           Ken Hamada         Tero Hanninen        github:svdijk
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    Eugene Golushkov        Laurent Gomila     Cort Stratton        github:snagar
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    Aruelien Pocheville     Sergio Gonzalez    Thibault Reuille     github:Zelex
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    Cass Everitt            Ryamond Barbiero                        github:grim210
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    Paul Du Bois            Engin Manap        Aldo Culquicondor    github:sammyhw
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    Philipp Wiesemann       Dale Weiler        Oriol Ferrer Mesia   github:phprus
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    Josh Tobin              Neil Bickford      Matthew Gregan       github:poppolopoppo
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    Julian Raschke          Gregory Mullen     Christian Floisand   github:darealshinji
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    Baldur Karlsson         Kevin Schmidt      JR Smith             github:Michaelangel007
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                            Brad Weinberger    Matvey Cherevko      github:mosra
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    Luca Sas                Alexander Veselov  Zack Middleton       [reserved]
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    Ryan C. Gordon          [reserved]                              [reserved]
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                     DO NOT ADD YOUR NAME HERE
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                     Jacko Dirks
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  To add your name to the credits, pick a random blank space in the middle and fill it.
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  80% of merge conflicts on stb PRs are due to people adding their name at the end
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  of the credits.
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*/
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#ifndef STBI_INCLUDE_STB_IMAGE_H
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#define STBI_INCLUDE_STB_IMAGE_H
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// DOCUMENTATION
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//
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// Limitations:
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//    - no 12-bit-per-channel JPEG
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//    - no JPEGs with arithmetic coding
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//    - GIF always returns *comp=4
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//
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// Basic usage (see HDR discussion below for HDR usage):
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//    int x,y,n;
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//    unsigned char *data = stbi_load(filename, &x, &y, &n, 0);
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//    // ... process data if not NULL ...
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//    // ... x = width, y = height, n = # 8-bit components per pixel ...
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//    // ... replace '0' with '1'..'4' to force that many components per pixel
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//    // ... but 'n' will always be the number that it would have been if you said 0
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//    stbi_image_free(data);
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//
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// Standard parameters:
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//    int *x                 -- outputs image width in pixels
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//    int *y                 -- outputs image height in pixels
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//    int *channels_in_file  -- outputs # of image components in image file
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//    int desired_channels   -- if non-zero, # of image components requested in result
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//
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// The return value from an image loader is an 'unsigned char *' which points
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// to the pixel data, or NULL on an allocation failure or if the image is
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// corrupt or invalid. The pixel data consists of *y scanlines of *x pixels,
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// with each pixel consisting of N interleaved 8-bit components; the first
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// pixel pointed to is top-left-most in the image. There is no padding between
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// image scanlines or between pixels, regardless of format. The number of
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// components N is 'desired_channels' if desired_channels is non-zero, or
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// *channels_in_file otherwise. If desired_channels is non-zero,
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// *channels_in_file has the number of components that _would_ have been
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// output otherwise. E.g. if you set desired_channels to 4, you will always
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// get RGBA output, but you can check *channels_in_file to see if it's trivially
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// opaque because e.g. there were only 3 channels in the source image.
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//
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// An output image with N components has the following components interleaved
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// in this order in each pixel:
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//
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//     N=#comp     components
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//       1           grey
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//       2           grey, alpha
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//       3           red, green, blue
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//       4           red, green, blue, alpha
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//
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// If image loading fails for any reason, the return value will be NULL,
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// and *x, *y, *channels_in_file will be unchanged. The function
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// stbi_failure_reason() can be queried for an extremely brief, end-user
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// unfriendly explanation of why the load failed. Define STBI_NO_FAILURE_STRINGS
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// to avoid compiling these strings at all, and STBI_FAILURE_USERMSG to get slightly
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// more user-friendly ones.
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//
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// Paletted PNG, BMP, GIF, and PIC images are automatically depalettized.
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//
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// To query the width, height and component count of an image without having to
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// decode the full file, you can use the stbi_info family of functions:
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//
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//   int x,y,n,ok;
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//   ok = stbi_info(filename, &x, &y, &n);
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//   // returns ok=1 and sets x, y, n if image is a supported format,
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//   // 0 otherwise.
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//
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// Note that stb_image pervasively uses ints in its public API for sizes,
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// including sizes of memory buffers. This is now part of the API and thus
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// hard to change without causing breakage. As a result, the various image
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// loaders all have certain limits on image size; these differ somewhat
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// by format but generally boil down to either just under 2GB or just under
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// 1GB. When the decoded image would be larger than this, stb_image decoding
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// will fail.
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//
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// Additionally, stb_image will reject image files that have any of their
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// dimensions set to a larger value than the configurable STBI_MAX_DIMENSIONS,
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// which defaults to 2**24 = 16777216 pixels. Due to the above memory limit,
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// the only way to have an image with such dimensions load correctly
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// is for it to have a rather extreme aspect ratio. Either way, the
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// assumption here is that such larger images are likely to be malformed
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// or malicious. If you do need to load an image with individual dimensions
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// larger than that, and it still fits in the overall size limit, you can
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// #define STBI_MAX_DIMENSIONS on your own to be something larger.
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//
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// ===========================================================================
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//
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// UNICODE:
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//
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//   If compiling for Windows and you wish to use Unicode filenames, compile
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//   with
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//       #define STBI_WINDOWS_UTF8
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//   and pass utf8-encoded filenames. Call stbi_convert_wchar_to_utf8 to convert
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//   Windows wchar_t filenames to utf8.
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//
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// ===========================================================================
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//
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// Philosophy
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//
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// stb libraries are designed with the following priorities:
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//
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//    1. easy to use
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//    2. easy to maintain
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//    3. good performance
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//
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// Sometimes I let "good performance" creep up in priority over "easy to maintain",
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// and for best performance I may provide less-easy-to-use APIs that give higher
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// performance, in addition to the easy-to-use ones. Nevertheless, it's important
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// to keep in mind that from the standpoint of you, a client of this library,
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// all you care about is #1 and #3, and stb libraries DO NOT emphasize #3 above all.
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//
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// Some secondary priorities arise directly from the first two, some of which
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// provide more explicit reasons why performance can't be emphasized.
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//
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//    - Portable ("ease of use")
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//    - Small source code footprint ("easy to maintain")
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//    - No dependencies ("ease of use")
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//
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// ===========================================================================
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//
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// I/O callbacks
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//
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// I/O callbacks allow you to read from arbitrary sources, like packaged
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// files or some other source. Data read from callbacks are processed
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// through a small internal buffer (currently 128 bytes) to try to reduce
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// overhead.
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//
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// The three functions you must define are "read" (reads some bytes of data),
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// "skip" (skips some bytes of data), "eof" (reports if the stream is at the end).
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//
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// ===========================================================================
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//
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// SIMD support
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//
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// The JPEG decoder will try to automatically use SIMD kernels on x86 when
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// supported by the compiler. For ARM Neon support, you must explicitly
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// request it.
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//
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// (The old do-it-yourself SIMD API is no longer supported in the current
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// code.)
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//
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// On x86, SSE2 will automatically be used when available based on a run-time
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// test; if not, the generic C versions are used as a fall-back. On ARM targets,
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// the typical path is to have separate builds for NEON and non-NEON devices
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// (at least this is true for iOS and Android). Therefore, the NEON support is
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// toggled by a build flag: define STBI_NEON to get NEON loops.
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//
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// If for some reason you do not want to use any of SIMD code, or if
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// you have issues compiling it, you can disable it entirely by
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// defining STBI_NO_SIMD.
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//
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// ===========================================================================
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//
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// HDR image support   (disable by defining STBI_NO_HDR)
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//
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// stb_image supports loading HDR images in general, and currently the Radiance
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// .HDR file format specifically. You can still load any file through the existing
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// interface; if you attempt to load an HDR file, it will be automatically remapped
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// to LDR, assuming gamma 2.2 and an arbitrary scale factor defaulting to 1;
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// both of these constants can be reconfigured through this interface:
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//
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//     stbi_hdr_to_ldr_gamma(2.2f);
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//     stbi_hdr_to_ldr_scale(1.0f);
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//
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// (note, do not use _inverse_ constants; stbi_image will invert them
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// appropriately).
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//
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// Additionally, there is a new, parallel interface for loading files as
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// (linear) floats to preserve the full dynamic range:
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//
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//    float *data = stbi_loadf(filename, &x, &y, &n, 0);
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//
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// If you load LDR images through this interface, those images will
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// be promoted to floating point values, run through the inverse of
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// constants corresponding to the above:
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//
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//     stbi_ldr_to_hdr_scale(1.0f);
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//     stbi_ldr_to_hdr_gamma(2.2f);
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//
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// Finally, given a filename (or an open file or memory block--see header
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// file for details) containing image data, you can query for the "most
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// appropriate" interface to use (that is, whether the image is HDR or
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// not), using:
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//
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//     stbi_is_hdr(char *filename);
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//
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// ===========================================================================
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//
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// iPhone PNG support:
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//
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// We optionally support converting iPhone-formatted PNGs (which store
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// premultiplied BGRA) back to RGB, even though they're internally encoded
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// differently. To enable this conversion, call
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// stbi_convert_iphone_png_to_rgb(1).
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//
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// Call stbi_set_unpremultiply_on_load(1) as well to force a divide per
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// pixel to remove any premultiplied alpha *only* if the image file explicitly
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// says there's premultiplied data (currently only happens in iPhone images,
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// and only if iPhone convert-to-rgb processing is on).
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//
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// ===========================================================================
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//
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// ADDITIONAL CONFIGURATION
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//
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//  - You can suppress implementation of any of the decoders to reduce
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//    your code footprint by #defining one or more of the following
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//    symbols before creating the implementation.
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//
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//        STBI_NO_JPEG
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//        STBI_NO_PNG
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//        STBI_NO_BMP
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//        STBI_NO_PSD
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//        STBI_NO_TGA
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//        STBI_NO_GIF
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//        STBI_NO_HDR
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//        STBI_NO_PIC
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//        STBI_NO_PNM   (.ppm and .pgm)
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//
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//  - You can request *only* certain decoders and suppress all other ones
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//    (this will be more forward-compatible, as addition of new decoders
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//    doesn't require you to disable them explicitly):
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//
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//        STBI_ONLY_JPEG
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//        STBI_ONLY_PNG
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//        STBI_ONLY_BMP
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//        STBI_ONLY_PSD
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//        STBI_ONLY_TGA
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//        STBI_ONLY_GIF
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//        STBI_ONLY_HDR
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//        STBI_ONLY_PIC
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//        STBI_ONLY_PNM   (.ppm and .pgm)
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//
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//   - If you use STBI_NO_PNG (or _ONLY_ without PNG), and you still
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//     want the zlib decoder to be available, #define STBI_SUPPORT_ZLIB
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//
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//  - If you define STBI_MAX_DIMENSIONS, stb_image will reject images greater
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//    than that size (in either width or height) without further processing.
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//    This is to let programs in the wild set an upper bound to prevent
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//    denial-of-service attacks on untrusted data, as one could generate a
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//    valid image of gigantic dimensions and force stb_image to allocate a
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//    huge block of memory and spend disproportionate time decoding it. By
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//    default this is set to (1 << 24), which is 16777216, but that's still
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//    very big.
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#ifndef STBI_NO_STDIO
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#include <stdio.h>
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#endif // STBI_NO_STDIO
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#define STBI_VERSION 1
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enum
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{
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   STBI_default = 0, // only used for desired_channels
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   STBI_grey       = 1,
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   STBI_grey_alpha = 2,
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   STBI_rgb        = 3,
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   STBI_rgb_alpha  = 4
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};
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#include <stdlib.h>
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typedef unsigned char stbi_uc;
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typedef unsigned short stbi_us;
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#ifdef __cplusplus
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extern "C" {
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#endif
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#ifndef STBIDEF
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#ifdef STB_IMAGE_STATIC
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#define STBIDEF static
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#else
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#define STBIDEF extern
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#endif
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#endif
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//////////////////////////////////////////////////////////////////////////////
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//
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// PRIMARY API - works on images of any type
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//
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//
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// load image by filename, open file, or memory buffer
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//
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typedef struct
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{
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   int      (*read)  (void *user,char *data,int size);   // fill 'data' with 'size' bytes.  return number of bytes actually read
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   void     (*skip)  (void *user,int n);                 // skip the next 'n' bytes, or 'unget' the last -n bytes if negative
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   int      (*eof)   (void *user);                       // returns nonzero if we are at end of file/data
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} stbi_io_callbacks;
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////////////////////////////////////
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//
420
// 8-bits-per-channel interface
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//
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STBIDEF stbi_uc *stbi_load_from_memory   (stbi_uc           const *buffer, int len   , int *x, int *y, int *channels_in_file, int desired_channels);
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STBIDEF stbi_uc *stbi_load_from_callbacks(stbi_io_callbacks const *clbk  , void *user, int *x, int *y, int *channels_in_file, int desired_channels);
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#ifndef STBI_NO_STDIO
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STBIDEF stbi_uc *stbi_load            (char const *filename, int *x, int *y, int *channels_in_file, int desired_channels);
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STBIDEF stbi_uc *stbi_load_from_file  (FILE *f, int *x, int *y, int *channels_in_file, int desired_channels);
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// for stbi_load_from_file, file pointer is left pointing immediately after image
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#endif
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#ifndef STBI_NO_GIF
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STBIDEF stbi_uc *stbi_load_gif_from_memory(stbi_uc const *buffer, int len, int **delays, int *x, int *y, int *z, int *comp, int req_comp);
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#endif
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#ifdef STBI_WINDOWS_UTF8
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STBIDEF int stbi_convert_wchar_to_utf8(char *buffer, size_t bufferlen, const wchar_t* input);
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#endif
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////////////////////////////////////
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//
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// 16-bits-per-channel interface
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//
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STBIDEF stbi_us *stbi_load_16_from_memory   (stbi_uc const *buffer, int len, int *x, int *y, int *channels_in_file, int desired_channels);
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STBIDEF stbi_us *stbi_load_16_from_callbacks(stbi_io_callbacks const *clbk, void *user, int *x, int *y, int *channels_in_file, int desired_channels);
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#ifndef STBI_NO_STDIO
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STBIDEF stbi_us *stbi_load_16          (char const *filename, int *x, int *y, int *channels_in_file, int desired_channels);
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STBIDEF stbi_us *stbi_load_from_file_16(FILE *f, int *x, int *y, int *channels_in_file, int desired_channels);
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#endif
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////////////////////////////////////
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//
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// float-per-channel interface
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//
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#ifndef STBI_NO_LINEAR
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   STBIDEF float *stbi_loadf_from_memory     (stbi_uc const *buffer, int len, int *x, int *y, int *channels_in_file, int desired_channels);
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   STBIDEF float *stbi_loadf_from_callbacks  (stbi_io_callbacks const *clbk, void *user, int *x, int *y,  int *channels_in_file, int desired_channels);
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   #ifndef STBI_NO_STDIO
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   STBIDEF float *stbi_loadf            (char const *filename, int *x, int *y, int *channels_in_file, int desired_channels);
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   STBIDEF float *stbi_loadf_from_file  (FILE *f, int *x, int *y, int *channels_in_file, int desired_channels);
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   #endif
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#endif
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#ifndef STBI_NO_HDR
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   STBIDEF void   stbi_hdr_to_ldr_gamma(float gamma);
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   STBIDEF void   stbi_hdr_to_ldr_scale(float scale);
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#endif // STBI_NO_HDR
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#ifndef STBI_NO_LINEAR
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   STBIDEF void   stbi_ldr_to_hdr_gamma(float gamma);
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   STBIDEF void   stbi_ldr_to_hdr_scale(float scale);
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#endif // STBI_NO_LINEAR
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// stbi_is_hdr is always defined, but always returns false if STBI_NO_HDR
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STBIDEF int    stbi_is_hdr_from_callbacks(stbi_io_callbacks const *clbk, void *user);
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STBIDEF int    stbi_is_hdr_from_memory(stbi_uc const *buffer, int len);
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#ifndef STBI_NO_STDIO
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STBIDEF int      stbi_is_hdr          (char const *filename);
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STBIDEF int      stbi_is_hdr_from_file(FILE *f);
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#endif // STBI_NO_STDIO
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// get a VERY brief reason for failure
487
// on most compilers (and ALL modern mainstream compilers) this is threadsafe
488
STBIDEF const char *stbi_failure_reason  (void);
489
490
// free the loaded image -- this is just free()
491
STBIDEF void     stbi_image_free      (void *retval_from_stbi_load);
492
493
// get image dimensions & components without fully decoding
494
STBIDEF int      stbi_info_from_memory(stbi_uc const *buffer, int len, int *x, int *y, int *comp);
495
STBIDEF int      stbi_info_from_callbacks(stbi_io_callbacks const *clbk, void *user, int *x, int *y, int *comp);
496
STBIDEF int      stbi_is_16_bit_from_memory(stbi_uc const *buffer, int len);
497
STBIDEF int      stbi_is_16_bit_from_callbacks(stbi_io_callbacks const *clbk, void *user);
498
499
#ifndef STBI_NO_STDIO
500
STBIDEF int      stbi_info               (char const *filename,     int *x, int *y, int *comp);
501
STBIDEF int      stbi_info_from_file     (FILE *f,                  int *x, int *y, int *comp);
502
STBIDEF int      stbi_is_16_bit          (char const *filename);
503
STBIDEF int      stbi_is_16_bit_from_file(FILE *f);
504
#endif
505
506
507
508
// for image formats that explicitly notate that they have premultiplied alpha,
509
// we just return the colors as stored in the file. set this flag to force
510
// unpremultiplication. results are undefined if the unpremultiply overflow.
511
STBIDEF void stbi_set_unpremultiply_on_load(int flag_true_if_should_unpremultiply);
512
513
// indicate whether we should process iphone images back to canonical format,
514
// or just pass them through "as-is"
515
STBIDEF void stbi_convert_iphone_png_to_rgb(int flag_true_if_should_convert);
516
517
// flip the image vertically, so the first pixel in the output array is the bottom left
518
STBIDEF void stbi_set_flip_vertically_on_load(int flag_true_if_should_flip);
519
520
// as above, but only applies to images loaded on the thread that calls the function
521
// this function is only available if your compiler supports thread-local variables;
522
// calling it will fail to link if your compiler doesn't
523
STBIDEF void stbi_set_unpremultiply_on_load_thread(int flag_true_if_should_unpremultiply);
524
STBIDEF void stbi_convert_iphone_png_to_rgb_thread(int flag_true_if_should_convert);
525
STBIDEF void stbi_set_flip_vertically_on_load_thread(int flag_true_if_should_flip);
526
527
// ZLIB client - used by PNG, available for other purposes
528
529
STBIDEF char *stbi_zlib_decode_malloc_guesssize(const char *buffer, int len, int initial_size, int *outlen);
530
STBIDEF char *stbi_zlib_decode_malloc_guesssize_headerflag(const char *buffer, int len, int initial_size, int *outlen, int parse_header);
531
STBIDEF char *stbi_zlib_decode_malloc(const char *buffer, int len, int *outlen);
532
STBIDEF int   stbi_zlib_decode_buffer(char *obuffer, int olen, const char *ibuffer, int ilen);
533
534
STBIDEF char *stbi_zlib_decode_noheader_malloc(const char *buffer, int len, int *outlen);
535
STBIDEF int   stbi_zlib_decode_noheader_buffer(char *obuffer, int olen, const char *ibuffer, int ilen);
536
537
538
#ifdef __cplusplus
539
}
540
#endif
541
542
//
543
//
544
////   end header file   /////////////////////////////////////////////////////
545
#endif // STBI_INCLUDE_STB_IMAGE_H
546
547
#ifdef STB_IMAGE_IMPLEMENTATION
548
549
#if defined(STBI_ONLY_JPEG) || defined(STBI_ONLY_PNG) || defined(STBI_ONLY_BMP) \
550
  || defined(STBI_ONLY_TGA) || defined(STBI_ONLY_GIF) || defined(STBI_ONLY_PSD) \
551
  || defined(STBI_ONLY_HDR) || defined(STBI_ONLY_PIC) || defined(STBI_ONLY_PNM) \
552
  || defined(STBI_ONLY_ZLIB)
553
   #ifndef STBI_ONLY_JPEG
554
   #define STBI_NO_JPEG
555
   #endif
556
   #ifndef STBI_ONLY_PNG
557
   #define STBI_NO_PNG
558
   #endif
559
   #ifndef STBI_ONLY_BMP
560
   #define STBI_NO_BMP
561
   #endif
562
   #ifndef STBI_ONLY_PSD
563
   #define STBI_NO_PSD
564
   #endif
565
   #ifndef STBI_ONLY_TGA
566
   #define STBI_NO_TGA
567
   #endif
568
   #ifndef STBI_ONLY_GIF
569
   #define STBI_NO_GIF
570
   #endif
571
   #ifndef STBI_ONLY_HDR
572
   #define STBI_NO_HDR
573
   #endif
574
   #ifndef STBI_ONLY_PIC
575
   #define STBI_NO_PIC
576
   #endif
577
   #ifndef STBI_ONLY_PNM
578
   #define STBI_NO_PNM
579
   #endif
580
#endif
581
582
#if defined(STBI_NO_PNG) && !defined(STBI_SUPPORT_ZLIB) && !defined(STBI_NO_ZLIB)
583
#define STBI_NO_ZLIB
584
#endif
585
586
587
#include <stdarg.h>
588
#include <stddef.h> // ptrdiff_t on osx
589
#include <stdlib.h>
590
#include <string.h>
591
#include <limits.h>
592
593
#if !defined(STBI_NO_LINEAR) || !defined(STBI_NO_HDR)
594
#include <math.h>  // ldexp, pow
595
#endif
596
597
#ifndef STBI_NO_STDIO
598
#include <stdio.h>
599
#endif
600
601
#ifndef STBI_ASSERT
602
#include <assert.h>
603
1.72G
#define STBI_ASSERT(x) assert(x)
604
#endif
605
606
#ifdef __cplusplus
607
#define STBI_EXTERN extern "C"
608
#else
609
#define STBI_EXTERN extern
610
#endif
611
612
613
#ifndef _MSC_VER
614
   #ifdef __cplusplus
615
   #define stbi_inline inline
616
   #else
617
   #define stbi_inline
618
   #endif
619
#else
620
   #define stbi_inline __forceinline
621
#endif
622
623
#ifndef STBI_NO_THREAD_LOCALS
624
   #if defined(__cplusplus) &&  __cplusplus >= 201103L
625
      #define STBI_THREAD_LOCAL       thread_local
626
   #elif defined(__GNUC__) && __GNUC__ < 5
627
      #define STBI_THREAD_LOCAL       __thread
628
   #elif defined(_MSC_VER)
629
      #define STBI_THREAD_LOCAL       __declspec(thread)
630
   #elif defined (__STDC_VERSION__) && __STDC_VERSION__ >= 201112L && !defined(__STDC_NO_THREADS__)
631
      #define STBI_THREAD_LOCAL       _Thread_local
632
   #endif
633
634
   #ifndef STBI_THREAD_LOCAL
635
      #if defined(__GNUC__)
636
        #define STBI_THREAD_LOCAL       __thread
637
      #endif
638
   #endif
639
#endif
640
641
#if defined(_MSC_VER) || defined(__SYMBIAN32__)
642
typedef unsigned short stbi__uint16;
643
typedef   signed short stbi__int16;
644
typedef unsigned int   stbi__uint32;
645
typedef   signed int   stbi__int32;
646
#else
647
#include <stdint.h>
648
typedef uint16_t stbi__uint16;
649
typedef int16_t  stbi__int16;
650
typedef uint32_t stbi__uint32;
651
typedef int32_t  stbi__int32;
652
#endif
653
654
// should produce compiler error if size is wrong
655
typedef unsigned char validate_uint32[sizeof(stbi__uint32)==4 ? 1 : -1];
656
657
#ifdef _MSC_VER
658
#define STBI_NOTUSED(v)  (void)(v)
659
#else
660
38.0M
#define STBI_NOTUSED(v)  (void)sizeof(v)
661
#endif
662
663
#ifdef _MSC_VER
664
#define STBI_HAS_LROTL
665
#endif
666
667
#ifdef STBI_HAS_LROTL
668
   #define stbi_lrot(x,y)  _lrotl(x,y)
669
#else
670
64.5M
   #define stbi_lrot(x,y)  (((x) << (y)) | ((x) >> (-(y) & 31)))
671
#endif
672
673
#if defined(STBI_MALLOC) && defined(STBI_FREE) && (defined(STBI_REALLOC) || defined(STBI_REALLOC_SIZED))
674
// ok
675
#elif !defined(STBI_MALLOC) && !defined(STBI_FREE) && !defined(STBI_REALLOC) && !defined(STBI_REALLOC_SIZED)
676
// ok
677
#else
678
#error "Must define all or none of STBI_MALLOC, STBI_FREE, and STBI_REALLOC (or STBI_REALLOC_SIZED)."
679
#endif
680
681
#ifndef STBI_MALLOC
682
27.5k
#define STBI_MALLOC(sz)           malloc(sz)
683
1.92k
#define STBI_REALLOC(p,newsz)     realloc(p,newsz)
684
28.7k
#define STBI_FREE(p)              free(p)
685
#endif
686
687
#ifndef STBI_REALLOC_SIZED
688
1.92k
#define STBI_REALLOC_SIZED(p,oldsz,newsz) STBI_REALLOC(p,newsz)
689
#endif
690
691
// x86/x64 detection
692
#if defined(__x86_64__) || defined(_M_X64)
693
#define STBI__X64_TARGET
694
#elif defined(__i386) || defined(_M_IX86)
695
#define STBI__X86_TARGET
696
#endif
697
698
#if defined(__GNUC__) && defined(STBI__X86_TARGET) && !defined(__SSE2__) && !defined(STBI_NO_SIMD)
699
// gcc doesn't support sse2 intrinsics unless you compile with -msse2,
700
// which in turn means it gets to use SSE2 everywhere. This is unfortunate,
701
// but previous attempts to provide the SSE2 functions with runtime
702
// detection caused numerous issues. The way architecture extensions are
703
// exposed in GCC/Clang is, sadly, not really suited for one-file libs.
704
// New behavior: if compiled with -msse2, we use SSE2 without any
705
// detection; if not, we don't use it at all.
706
#define STBI_NO_SIMD
707
#endif
708
709
#if defined(__MINGW32__) && defined(STBI__X86_TARGET) && !defined(STBI_MINGW_ENABLE_SSE2) && !defined(STBI_NO_SIMD)
710
// Note that __MINGW32__ doesn't actually mean 32-bit, so we have to avoid STBI__X64_TARGET
711
//
712
// 32-bit MinGW wants ESP to be 16-byte aligned, but this is not in the
713
// Windows ABI and VC++ as well as Windows DLLs don't maintain that invariant.
714
// As a result, enabling SSE2 on 32-bit MinGW is dangerous when not
715
// simultaneously enabling "-mstackrealign".
716
//
717
// See https://github.com/nothings/stb/issues/81 for more information.
718
//
719
// So default to no SSE2 on 32-bit MinGW. If you've read this far and added
720
// -mstackrealign to your build settings, feel free to #define STBI_MINGW_ENABLE_SSE2.
721
#define STBI_NO_SIMD
722
#endif
723
724
#if !defined(STBI_NO_SIMD) && (defined(STBI__X86_TARGET) || defined(STBI__X64_TARGET))
725
#define STBI_SSE2
726
#include <emmintrin.h>
727
728
#ifdef _MSC_VER
729
730
#if _MSC_VER >= 1400  // not VC6
731
#include <intrin.h> // __cpuid
732
static int stbi__cpuid3(void)
733
{
734
   int info[4];
735
   __cpuid(info,1);
736
   return info[3];
737
}
738
#else
739
static int stbi__cpuid3(void)
740
{
741
   int res;
742
   __asm {
743
      mov  eax,1
744
      cpuid
745
      mov  res,edx
746
   }
747
   return res;
748
}
749
#endif
750
751
#define STBI_SIMD_ALIGN(type, name) __declspec(align(16)) type name
752
753
#if !defined(STBI_NO_JPEG) && defined(STBI_SSE2)
754
static int stbi__sse2_available(void)
755
{
756
   int info3 = stbi__cpuid3();
757
   return ((info3 >> 26) & 1) != 0;
758
}
759
#endif
760
761
#else // assume GCC-style if not VC++
762
2.37k
#define STBI_SIMD_ALIGN(type, name) type name __attribute__((aligned(16)))
763
764
#if !defined(STBI_NO_JPEG) && defined(STBI_SSE2)
765
static int stbi__sse2_available(void)
766
3.42k
{
767
   // If we're even attempting to compile this on GCC/Clang, that means
768
   // -msse2 is on, which means the compiler is allowed to use SSE2
769
   // instructions at will, and so are we.
770
3.42k
   return 1;
771
3.42k
}
772
#endif
773
774
#endif
775
#endif
776
777
// ARM NEON
778
#if defined(STBI_NO_SIMD) && defined(STBI_NEON)
779
#undef STBI_NEON
780
#endif
781
782
#ifdef STBI_NEON
783
#include <arm_neon.h>
784
#ifdef _MSC_VER
785
#define STBI_SIMD_ALIGN(type, name) __declspec(align(16)) type name
786
#else
787
#define STBI_SIMD_ALIGN(type, name) type name __attribute__((aligned(16)))
788
#endif
789
#endif
790
791
#ifndef STBI_SIMD_ALIGN
792
#define STBI_SIMD_ALIGN(type, name) type name
793
#endif
794
795
#ifndef STBI_MAX_DIMENSIONS
796
15.9k
#define STBI_MAX_DIMENSIONS (1 << 24)
797
#endif
798
799
///////////////////////////////////////////////
800
//
801
//  stbi__context struct and start_xxx functions
802
803
// stbi__context structure is our basic context used by all images, so it
804
// contains all the IO context, plus some basic image information
805
typedef struct
806
{
807
   stbi__uint32 img_x, img_y;
808
   int img_n, img_out_n;
809
810
   stbi_io_callbacks io;
811
   void *io_user_data;
812
813
   int read_from_callbacks;
814
   int buflen;
815
   stbi_uc buffer_start[128];
816
   int callback_already_read;
817
818
   stbi_uc *img_buffer, *img_buffer_end;
819
   stbi_uc *img_buffer_original, *img_buffer_original_end;
820
} stbi__context;
821
822
823
static void stbi__refill_buffer(stbi__context *s);
824
825
// initialize a memory-decode context
826
static void stbi__start_mem(stbi__context *s, stbi_uc const *buffer, int len)
827
11.5k
{
828
11.5k
   s->io.read = NULL;
829
11.5k
   s->read_from_callbacks = 0;
830
11.5k
   s->callback_already_read = 0;
831
11.5k
   s->img_buffer = s->img_buffer_original = (stbi_uc *) buffer;
832
11.5k
   s->img_buffer_end = s->img_buffer_original_end = (stbi_uc *) buffer+len;
833
11.5k
}
834
835
// initialize a callback-based context
836
static void stbi__start_callbacks(stbi__context *s, stbi_io_callbacks *c, void *user)
837
0
{
838
0
   s->io = *c;
839
0
   s->io_user_data = user;
840
0
   s->buflen = sizeof(s->buffer_start);
841
0
   s->read_from_callbacks = 1;
842
0
   s->callback_already_read = 0;
843
0
   s->img_buffer = s->img_buffer_original = s->buffer_start;
844
0
   stbi__refill_buffer(s);
845
0
   s->img_buffer_original_end = s->img_buffer_end;
846
0
}
847
848
#ifndef STBI_NO_STDIO
849
850
static int stbi__stdio_read(void *user, char *data, int size)
851
0
{
852
0
   return (int) fread(data,1,size,(FILE*) user);
853
0
}
854
855
static void stbi__stdio_skip(void *user, int n)
856
0
{
857
0
   int ch;
858
0
   fseek((FILE*) user, n, SEEK_CUR);
859
0
   ch = fgetc((FILE*) user);  /* have to read a byte to reset feof()'s flag */
860
0
   if (ch != EOF) {
861
0
      ungetc(ch, (FILE *) user);  /* push byte back onto stream if valid. */
862
0
   }
863
0
}
864
865
static int stbi__stdio_eof(void *user)
866
0
{
867
0
   return feof((FILE*) user) || ferror((FILE *) user);
868
0
}
869
870
static stbi_io_callbacks stbi__stdio_callbacks =
871
{
872
   stbi__stdio_read,
873
   stbi__stdio_skip,
874
   stbi__stdio_eof,
875
};
876
877
static void stbi__start_file(stbi__context *s, FILE *f)
878
0
{
879
0
   stbi__start_callbacks(s, &stbi__stdio_callbacks, (void *) f);
880
0
}
881
882
//static void stop_file(stbi__context *s) { }
883
884
#endif // !STBI_NO_STDIO
885
886
static void stbi__rewind(stbi__context *s)
887
56.2k
{
888
   // conceptually rewind SHOULD rewind to the beginning of the stream,
889
   // but we just rewind to the beginning of the initial buffer, because
890
   // we only use it after doing 'test', which only ever looks at at most 92 bytes
891
56.2k
   s->img_buffer = s->img_buffer_original;
892
56.2k
   s->img_buffer_end = s->img_buffer_original_end;
893
56.2k
}
894
895
enum
896
{
897
   STBI_ORDER_RGB,
898
   STBI_ORDER_BGR
899
};
900
901
typedef struct
902
{
903
   int bits_per_channel;
904
   int num_channels;
905
   int channel_order;
906
} stbi__result_info;
907
908
#ifndef STBI_NO_JPEG
909
static int      stbi__jpeg_test(stbi__context *s);
910
static void    *stbi__jpeg_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
911
static int      stbi__jpeg_info(stbi__context *s, int *x, int *y, int *comp);
912
#endif
913
914
#ifndef STBI_NO_PNG
915
static int      stbi__png_test(stbi__context *s);
916
static void    *stbi__png_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
917
static int      stbi__png_info(stbi__context *s, int *x, int *y, int *comp);
918
static int      stbi__png_is16(stbi__context *s);
919
#endif
920
921
#ifndef STBI_NO_BMP
922
static int      stbi__bmp_test(stbi__context *s);
923
static void    *stbi__bmp_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
924
static int      stbi__bmp_info(stbi__context *s, int *x, int *y, int *comp);
925
#endif
926
927
#ifndef STBI_NO_TGA
928
static int      stbi__tga_test(stbi__context *s);
929
static void    *stbi__tga_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
930
static int      stbi__tga_info(stbi__context *s, int *x, int *y, int *comp);
931
#endif
932
933
#ifndef STBI_NO_PSD
934
static int      stbi__psd_test(stbi__context *s);
935
static void    *stbi__psd_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri, int bpc);
936
static int      stbi__psd_info(stbi__context *s, int *x, int *y, int *comp);
937
static int      stbi__psd_is16(stbi__context *s);
938
#endif
939
940
#ifndef STBI_NO_HDR
941
static int      stbi__hdr_test(stbi__context *s);
942
static float   *stbi__hdr_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
943
static int      stbi__hdr_info(stbi__context *s, int *x, int *y, int *comp);
944
#endif
945
946
#ifndef STBI_NO_PIC
947
static int      stbi__pic_test(stbi__context *s);
948
static void    *stbi__pic_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
949
static int      stbi__pic_info(stbi__context *s, int *x, int *y, int *comp);
950
#endif
951
952
#ifndef STBI_NO_GIF
953
static int      stbi__gif_test(stbi__context *s);
954
static void    *stbi__gif_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
955
static void    *stbi__load_gif_main(stbi__context *s, int **delays, int *x, int *y, int *z, int *comp, int req_comp);
956
static int      stbi__gif_info(stbi__context *s, int *x, int *y, int *comp);
957
#endif
958
959
#ifndef STBI_NO_PNM
960
static int      stbi__pnm_test(stbi__context *s);
961
static void    *stbi__pnm_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri);
962
static int      stbi__pnm_info(stbi__context *s, int *x, int *y, int *comp);
963
static int      stbi__pnm_is16(stbi__context *s);
964
#endif
965
966
static
967
#ifdef STBI_THREAD_LOCAL
968
STBI_THREAD_LOCAL
969
#endif
970
const char *stbi__g_failure_reason;
971
972
STBIDEF const char *stbi_failure_reason(void)
973
0
{
974
0
   return stbi__g_failure_reason;
975
0
}
976
977
#ifndef STBI_NO_FAILURE_STRINGS
978
static int stbi__err(const char *str)
979
25.8k
{
980
25.8k
   stbi__g_failure_reason = str;
981
25.8k
   return 0;
982
25.8k
}
983
#endif
984
985
static void *stbi__malloc(size_t size)
986
27.5k
{
987
27.5k
    return STBI_MALLOC(size);
988
27.5k
}
989
990
// stb_image uses ints pervasively, including for offset calculations.
991
// therefore the largest decoded image size we can support with the
992
// current code, even on 64-bit targets, is INT_MAX. this is not a
993
// significant limitation for the intended use case.
994
//
995
// we do, however, need to make sure our size calculations don't
996
// overflow. hence a few helper functions for size calculations that
997
// multiply integers together, making sure that they're non-negative
998
// and no overflow occurs.
999
1000
// return 1 if the sum is valid, 0 on overflow.
1001
// negative terms are considered invalid.
1002
static int stbi__addsizes_valid(int a, int b)
1003
15.0k
{
1004
15.0k
   if (b < 0) return 0;
1005
   // now 0 <= b <= INT_MAX, hence also
1006
   // 0 <= INT_MAX - b <= INTMAX.
1007
   // And "a + b <= INT_MAX" (which might overflow) is the
1008
   // same as a <= INT_MAX - b (no overflow)
1009
15.0k
   return a <= INT_MAX - b;
1010
15.0k
}
1011
1012
// returns 1 if the product is valid, 0 on overflow.
1013
// negative factors are considered invalid.
1014
static int stbi__mul2sizes_valid(int a, int b)
1015
26.6k
{
1016
26.6k
   if (a < 0 || b < 0) return 0;
1017
26.5k
   if (b == 0) return 1; // mul-by-0 is always safe
1018
   // portable way to check for no overflows in a*b
1019
25.6k
   return a <= INT_MAX/b;
1020
26.5k
}
1021
1022
#if !defined(STBI_NO_JPEG) || !defined(STBI_NO_PNG) || !defined(STBI_NO_TGA) || !defined(STBI_NO_HDR)
1023
// returns 1 if "a*b + add" has no negative terms/factors and doesn't overflow
1024
static int stbi__mad2sizes_valid(int a, int b, int add)
1025
4.58k
{
1026
4.58k
   return stbi__mul2sizes_valid(a, b) && stbi__addsizes_valid(a*b, add);
1027
4.58k
}
1028
#endif
1029
1030
// returns 1 if "a*b*c + add" has no negative terms/factors and doesn't overflow
1031
static int stbi__mad3sizes_valid(int a, int b, int c, int add)
1032
9.39k
{
1033
9.39k
   return stbi__mul2sizes_valid(a, b) && stbi__mul2sizes_valid(a*b, c) &&
1034
9.34k
      stbi__addsizes_valid(a*b*c, add);
1035
9.39k
}
1036
1037
// returns 1 if "a*b*c*d + add" has no negative terms/factors and doesn't overflow
1038
#if !defined(STBI_NO_LINEAR) || !defined(STBI_NO_HDR) || !defined(STBI_NO_PNM)
1039
static int stbi__mad4sizes_valid(int a, int b, int c, int d, int add)
1040
1.11k
{
1041
1.11k
   return stbi__mul2sizes_valid(a, b) && stbi__mul2sizes_valid(a*b, c) &&
1042
1.08k
      stbi__mul2sizes_valid(a*b*c, d) && stbi__addsizes_valid(a*b*c*d, add);
1043
1.11k
}
1044
#endif
1045
1046
#if !defined(STBI_NO_JPEG) || !defined(STBI_NO_PNG) || !defined(STBI_NO_TGA) || !defined(STBI_NO_HDR)
1047
// mallocs with size overflow checking
1048
static void *stbi__malloc_mad2(int a, int b, int add)
1049
3.47k
{
1050
3.47k
   if (!stbi__mad2sizes_valid(a, b, add)) return NULL;
1051
3.47k
   return stbi__malloc(a*b + add);
1052
3.47k
}
1053
#endif
1054
1055
static void *stbi__malloc_mad3(int a, int b, int c, int add)
1056
5.28k
{
1057
5.28k
   if (!stbi__mad3sizes_valid(a, b, c, add)) return NULL;
1058
5.28k
   return stbi__malloc(a*b*c + add);
1059
5.28k
}
1060
1061
#if !defined(STBI_NO_LINEAR) || !defined(STBI_NO_HDR) || !defined(STBI_NO_PNM)
1062
static void *stbi__malloc_mad4(int a, int b, int c, int d, int add)
1063
541
{
1064
541
   if (!stbi__mad4sizes_valid(a, b, c, d, add)) return NULL;
1065
541
   return stbi__malloc(a*b*c*d + add);
1066
541
}
1067
#endif
1068
1069
// returns 1 if the sum of two signed ints is valid (between -2^31 and 2^31-1 inclusive), 0 on overflow.
1070
static int stbi__addints_valid(int a, int b)
1071
74.0M
{
1072
74.0M
   if ((a >= 0) != (b >= 0)) return 1; // a and b have different signs, so no overflow
1073
73.9M
   if (a < 0 && b < 0) return a >= INT_MIN - b; // same as a + b >= INT_MIN; INT_MIN - b cannot overflow since b < 0.
1074
66.0M
   return a <= INT_MAX - b;
1075
73.9M
}
1076
1077
// returns 1 if the product of two ints fits in a signed short, 0 on overflow.
1078
static int stbi__mul2shorts_valid(int a, int b)
1079
74.0M
{
1080
74.0M
   if (b == 0 || b == -1) return 1; // multiplication by 0 is always 0; check for -1 so SHRT_MIN/b doesn't overflow
1081
28.3M
   if ((a >= 0) == (b >= 0)) return a <= SHRT_MAX/b; // product is positive, so similar to mul2sizes_valid
1082
173k
   if (b < 0) return a <= SHRT_MIN / b; // same as a * b >= SHRT_MIN
1083
173k
   return a >= SHRT_MIN / b;
1084
173k
}
1085
1086
// stbi__err - error
1087
// stbi__errpf - error returning pointer to float
1088
// stbi__errpuc - error returning pointer to unsigned char
1089
1090
#ifdef STBI_NO_FAILURE_STRINGS
1091
   #define stbi__err(x,y)  0
1092
#elif defined(STBI_FAILURE_USERMSG)
1093
   #define stbi__err(x,y)  stbi__err(y)
1094
#else
1095
25.8k
   #define stbi__err(x,y)  stbi__err(x)
1096
#endif
1097
1098
113
#define stbi__errpf(x,y)   ((float *)(size_t) (stbi__err(x,y)?NULL:NULL))
1099
4.14k
#define stbi__errpuc(x,y)  ((unsigned char *)(size_t) (stbi__err(x,y)?NULL:NULL))
1100
1101
STBIDEF void stbi_image_free(void *retval_from_stbi_load)
1102
0
{
1103
0
   STBI_FREE(retval_from_stbi_load);
1104
0
}
1105
1106
#ifndef STBI_NO_LINEAR
1107
static float   *stbi__ldr_to_hdr(stbi_uc *data, int x, int y, int comp);
1108
#endif
1109
1110
#ifndef STBI_NO_HDR
1111
static stbi_uc *stbi__hdr_to_ldr(float   *data, int x, int y, int comp);
1112
#endif
1113
1114
static int stbi__vertically_flip_on_load_global = 0;
1115
1116
STBIDEF void stbi_set_flip_vertically_on_load(int flag_true_if_should_flip)
1117
0
{
1118
0
   stbi__vertically_flip_on_load_global = flag_true_if_should_flip;
1119
0
}
1120
1121
#ifndef STBI_THREAD_LOCAL
1122
#define stbi__vertically_flip_on_load  stbi__vertically_flip_on_load_global
1123
#else
1124
static STBI_THREAD_LOCAL int stbi__vertically_flip_on_load_local, stbi__vertically_flip_on_load_set;
1125
1126
STBIDEF void stbi_set_flip_vertically_on_load_thread(int flag_true_if_should_flip)
1127
0
{
1128
0
   stbi__vertically_flip_on_load_local = flag_true_if_should_flip;
1129
0
   stbi__vertically_flip_on_load_set = 1;
1130
0
}
1131
1132
2.42k
#define stbi__vertically_flip_on_load  (stbi__vertically_flip_on_load_set       \
1133
2.42k
                                         ? stbi__vertically_flip_on_load_local  \
1134
2.42k
                                         : stbi__vertically_flip_on_load_global)
1135
#endif // STBI_THREAD_LOCAL
1136
1137
static void *stbi__load_main(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri, int bpc)
1138
4.85k
{
1139
4.85k
   memset(ri, 0, sizeof(*ri)); // make sure it's initialized if we add new fields
1140
4.85k
   ri->bits_per_channel = 8; // default is 8 so most paths don't have to be changed
1141
4.85k
   ri->channel_order = STBI_ORDER_RGB; // all current input & output are this, but this is here so we can add BGR order
1142
4.85k
   ri->num_channels = 0;
1143
1144
   // test the formats with a very explicit header first (at least a FOURCC
1145
   // or distinctive magic number first)
1146
4.85k
   #ifndef STBI_NO_PNG
1147
4.85k
   if (stbi__png_test(s))  return stbi__png_load(s,x,y,comp,req_comp, ri);
1148
3.72k
   #endif
1149
   #ifndef STBI_NO_BMP
1150
3.72k
   if (stbi__bmp_test(s))  return stbi__bmp_load(s,x,y,comp,req_comp, ri);
1151
2.88k
   #endif
1152
   #ifndef STBI_NO_GIF
1153
2.88k
   if (stbi__gif_test(s))  return stbi__gif_load(s,x,y,comp,req_comp, ri);
1154
2.52k
   #endif
1155
   #ifndef STBI_NO_PSD
1156
2.52k
   if (stbi__psd_test(s))  return stbi__psd_load(s,x,y,comp,req_comp, ri, bpc);
1157
   #else
1158
0
   STBI_NOTUSED(bpc);
1159
0
   #endif
1160
   #ifndef STBI_NO_PIC
1161
2.29k
   if (stbi__pic_test(s))  return stbi__pic_load(s,x,y,comp,req_comp, ri);
1162
2.11k
   #endif
1163
1164
   // then the formats that can end up attempting to load with just 1 or 2
1165
   // bytes matching expectations; these are prone to false positives, so
1166
   // try them later
1167
   #ifndef STBI_NO_JPEG
1168
2.11k
   if (stbi__jpeg_test(s)) return stbi__jpeg_load(s,x,y,comp,req_comp, ri);
1169
804
   #endif
1170
   #ifndef STBI_NO_PNM
1171
804
   if (stbi__pnm_test(s))  return stbi__pnm_load(s,x,y,comp,req_comp, ri);
1172
588
   #endif
1173
1174
   #ifndef STBI_NO_HDR
1175
588
   if (stbi__hdr_test(s)) {
1176
373
      float *hdr = stbi__hdr_load(s, x,y,comp,req_comp, ri);
1177
373
      return stbi__hdr_to_ldr(hdr, *x, *y, req_comp ? req_comp : *comp);
1178
373
   }
1179
215
   #endif
1180
1181
   #ifndef STBI_NO_TGA
1182
   // test tga last because it's a crappy test!
1183
215
   if (stbi__tga_test(s))
1184
206
      return stbi__tga_load(s,x,y,comp,req_comp, ri);
1185
9
   #endif
1186
1187
9
   return stbi__errpuc("unknown image type", "Image not of any known type, or corrupt");
1188
215
}
stbi_read_fuzzer.c:stbi__load_main(stbi__context*, int*, int*, int*, int, stbi__result_info*, int)
Line
Count
Source
1138
4.61k
{
1139
4.61k
   memset(ri, 0, sizeof(*ri)); // make sure it's initialized if we add new fields
1140
4.61k
   ri->bits_per_channel = 8; // default is 8 so most paths don't have to be changed
1141
4.61k
   ri->channel_order = STBI_ORDER_RGB; // all current input & output are this, but this is here so we can add BGR order
1142
4.61k
   ri->num_channels = 0;
1143
1144
   // test the formats with a very explicit header first (at least a FOURCC
1145
   // or distinctive magic number first)
1146
4.61k
   #ifndef STBI_NO_PNG
1147
4.61k
   if (stbi__png_test(s))  return stbi__png_load(s,x,y,comp,req_comp, ri);
1148
3.72k
   #endif
1149
3.72k
   #ifndef STBI_NO_BMP
1150
3.72k
   if (stbi__bmp_test(s))  return stbi__bmp_load(s,x,y,comp,req_comp, ri);
1151
2.88k
   #endif
1152
2.88k
   #ifndef STBI_NO_GIF
1153
2.88k
   if (stbi__gif_test(s))  return stbi__gif_load(s,x,y,comp,req_comp, ri);
1154
2.52k
   #endif
1155
2.52k
   #ifndef STBI_NO_PSD
1156
2.52k
   if (stbi__psd_test(s))  return stbi__psd_load(s,x,y,comp,req_comp, ri, bpc);
1157
   #else
1158
   STBI_NOTUSED(bpc);
1159
   #endif
1160
2.29k
   #ifndef STBI_NO_PIC
1161
2.29k
   if (stbi__pic_test(s))  return stbi__pic_load(s,x,y,comp,req_comp, ri);
1162
2.11k
   #endif
1163
1164
   // then the formats that can end up attempting to load with just 1 or 2
1165
   // bytes matching expectations; these are prone to false positives, so
1166
   // try them later
1167
2.11k
   #ifndef STBI_NO_JPEG
1168
2.11k
   if (stbi__jpeg_test(s)) return stbi__jpeg_load(s,x,y,comp,req_comp, ri);
1169
804
   #endif
1170
804
   #ifndef STBI_NO_PNM
1171
804
   if (stbi__pnm_test(s))  return stbi__pnm_load(s,x,y,comp,req_comp, ri);
1172
588
   #endif
1173
1174
588
   #ifndef STBI_NO_HDR
1175
588
   if (stbi__hdr_test(s)) {
1176
373
      float *hdr = stbi__hdr_load(s, x,y,comp,req_comp, ri);
1177
373
      return stbi__hdr_to_ldr(hdr, *x, *y, req_comp ? req_comp : *comp);
1178
373
   }
1179
215
   #endif
1180
1181
215
   #ifndef STBI_NO_TGA
1182
   // test tga last because it's a crappy test!
1183
215
   if (stbi__tga_test(s))
1184
206
      return stbi__tga_load(s,x,y,comp,req_comp, ri);
1185
9
   #endif
1186
1187
9
   return stbi__errpuc("unknown image type", "Image not of any known type, or corrupt");
1188
215
}
stbi_read_fuzzer.c:stbi__load_main(stbi__context*, int*, int*, int*, int, stbi__result_info*, int)
Line
Count
Source
1138
241
{
1139
241
   memset(ri, 0, sizeof(*ri)); // make sure it's initialized if we add new fields
1140
241
   ri->bits_per_channel = 8; // default is 8 so most paths don't have to be changed
1141
241
   ri->channel_order = STBI_ORDER_RGB; // all current input & output are this, but this is here so we can add BGR order
1142
241
   ri->num_channels = 0;
1143
1144
   // test the formats with a very explicit header first (at least a FOURCC
1145
   // or distinctive magic number first)
1146
241
   #ifndef STBI_NO_PNG
1147
241
   if (stbi__png_test(s))  return stbi__png_load(s,x,y,comp,req_comp, ri);
1148
0
   #endif
1149
   #ifndef STBI_NO_BMP
1150
   if (stbi__bmp_test(s))  return stbi__bmp_load(s,x,y,comp,req_comp, ri);
1151
   #endif
1152
   #ifndef STBI_NO_GIF
1153
   if (stbi__gif_test(s))  return stbi__gif_load(s,x,y,comp,req_comp, ri);
1154
   #endif
1155
   #ifndef STBI_NO_PSD
1156
   if (stbi__psd_test(s))  return stbi__psd_load(s,x,y,comp,req_comp, ri, bpc);
1157
   #else
1158
0
   STBI_NOTUSED(bpc);
1159
0
   #endif
1160
   #ifndef STBI_NO_PIC
1161
   if (stbi__pic_test(s))  return stbi__pic_load(s,x,y,comp,req_comp, ri);
1162
   #endif
1163
1164
   // then the formats that can end up attempting to load with just 1 or 2
1165
   // bytes matching expectations; these are prone to false positives, so
1166
   // try them later
1167
   #ifndef STBI_NO_JPEG
1168
   if (stbi__jpeg_test(s)) return stbi__jpeg_load(s,x,y,comp,req_comp, ri);
1169
   #endif
1170
   #ifndef STBI_NO_PNM
1171
   if (stbi__pnm_test(s))  return stbi__pnm_load(s,x,y,comp,req_comp, ri);
1172
   #endif
1173
1174
   #ifndef STBI_NO_HDR
1175
   if (stbi__hdr_test(s)) {
1176
      float *hdr = stbi__hdr_load(s, x,y,comp,req_comp, ri);
1177
      return stbi__hdr_to_ldr(hdr, *x, *y, req_comp ? req_comp : *comp);
1178
   }
1179
   #endif
1180
1181
   #ifndef STBI_NO_TGA
1182
   // test tga last because it's a crappy test!
1183
   if (stbi__tga_test(s))
1184
      return stbi__tga_load(s,x,y,comp,req_comp, ri);
1185
   #endif
1186
1187
   return stbi__errpuc("unknown image type", "Image not of any known type, or corrupt");
1188
241
}
1189
1190
static stbi_uc *stbi__convert_16_to_8(stbi__uint16 *orig, int w, int h, int channels)
1191
144
{
1192
144
   int i;
1193
144
   int img_len = w * h * channels;
1194
144
   stbi_uc *reduced;
1195
1196
144
   reduced = (stbi_uc *) stbi__malloc(img_len);
1197
144
   if (reduced == NULL) return stbi__errpuc("outofmem", "Out of memory");
1198
1199
898M
   for (i = 0; i < img_len; ++i)
1200
898M
      reduced[i] = (stbi_uc)((orig[i] >> 8) & 0xFF); // top half of each byte is sufficient approx of 16->8 bit scaling
1201
1202
144
   STBI_FREE(orig);
1203
144
   return reduced;
1204
144
}
1205
1206
static stbi__uint16 *stbi__convert_8_to_16(stbi_uc *orig, int w, int h, int channels)
1207
0
{
1208
0
   int i;
1209
0
   int img_len = w * h * channels;
1210
0
   stbi__uint16 *enlarged;
1211
1212
0
   enlarged = (stbi__uint16 *) stbi__malloc(img_len*2);
1213
0
   if (enlarged == NULL) return (stbi__uint16 *) stbi__errpuc("outofmem", "Out of memory");
1214
1215
0
   for (i = 0; i < img_len; ++i)
1216
0
      enlarged[i] = (stbi__uint16)((orig[i] << 8) + orig[i]); // replicate to high and low byte, maps 0->0, 255->0xffff
1217
1218
0
   STBI_FREE(orig);
1219
0
   return enlarged;
1220
0
}
1221
1222
static void stbi__vertical_flip(void *image, int w, int h, int bytes_per_pixel)
1223
0
{
1224
0
   int row;
1225
0
   size_t bytes_per_row = (size_t)w * bytes_per_pixel;
1226
0
   stbi_uc temp[2048];
1227
0
   stbi_uc *bytes = (stbi_uc *)image;
1228
1229
0
   for (row = 0; row < (h>>1); row++) {
1230
0
      stbi_uc *row0 = bytes + row*bytes_per_row;
1231
0
      stbi_uc *row1 = bytes + (h - row - 1)*bytes_per_row;
1232
      // swap row0 with row1
1233
0
      size_t bytes_left = bytes_per_row;
1234
0
      while (bytes_left) {
1235
0
         size_t bytes_copy = (bytes_left < sizeof(temp)) ? bytes_left : sizeof(temp);
1236
0
         memcpy(temp, row0, bytes_copy);
1237
0
         memcpy(row0, row1, bytes_copy);
1238
0
         memcpy(row1, temp, bytes_copy);
1239
0
         row0 += bytes_copy;
1240
0
         row1 += bytes_copy;
1241
0
         bytes_left -= bytes_copy;
1242
0
      }
1243
0
   }
1244
0
}
1245
1246
#ifndef STBI_NO_GIF
1247
static void stbi__vertical_flip_slices(void *image, int w, int h, int z, int bytes_per_pixel)
1248
0
{
1249
0
   int slice;
1250
0
   int slice_size = w * h * bytes_per_pixel;
1251
1252
0
   stbi_uc *bytes = (stbi_uc *)image;
1253
0
   for (slice = 0; slice < z; ++slice) {
1254
0
      stbi__vertical_flip(bytes, w, h, bytes_per_pixel);
1255
0
      bytes += slice_size;
1256
0
   }
1257
0
}
1258
#endif
1259
1260
static unsigned char *stbi__load_and_postprocess_8bit(stbi__context *s, int *x, int *y, int *comp, int req_comp)
1261
4.85k
{
1262
4.85k
   stbi__result_info ri;
1263
4.85k
   void *result = stbi__load_main(s, x, y, comp, req_comp, &ri, 8);
1264
1265
4.85k
   if (result == NULL)
1266
2.43k
      return NULL;
1267
1268
   // it is the responsibility of the loaders to make sure we get either 8 or 16 bit.
1269
2.42k
   STBI_ASSERT(ri.bits_per_channel == 8 || ri.bits_per_channel == 16);
1270
1271
2.42k
   if (ri.bits_per_channel != 8) {
1272
144
      result = stbi__convert_16_to_8((stbi__uint16 *) result, *x, *y, req_comp == 0 ? *comp : req_comp);
1273
144
      ri.bits_per_channel = 8;
1274
144
   }
1275
1276
   // @TODO: move stbi__convert_format to here
1277
1278
2.42k
   if (stbi__vertically_flip_on_load) {
1279
0
      int channels = req_comp ? req_comp : *comp;
1280
0
      stbi__vertical_flip(result, *x, *y, channels * sizeof(stbi_uc));
1281
0
   }
1282
1283
2.42k
   return (unsigned char *) result;
1284
2.42k
}
1285
1286
static stbi__uint16 *stbi__load_and_postprocess_16bit(stbi__context *s, int *x, int *y, int *comp, int req_comp)
1287
0
{
1288
0
   stbi__result_info ri;
1289
0
   void *result = stbi__load_main(s, x, y, comp, req_comp, &ri, 16);
1290
1291
0
   if (result == NULL)
1292
0
      return NULL;
1293
1294
   // it is the responsibility of the loaders to make sure we get either 8 or 16 bit.
1295
0
   STBI_ASSERT(ri.bits_per_channel == 8 || ri.bits_per_channel == 16);
1296
1297
0
   if (ri.bits_per_channel != 16) {
1298
0
      result = stbi__convert_8_to_16((stbi_uc *) result, *x, *y, req_comp == 0 ? *comp : req_comp);
1299
0
      ri.bits_per_channel = 16;
1300
0
   }
1301
1302
   // @TODO: move stbi__convert_format16 to here
1303
   // @TODO: special case RGB-to-Y (and RGBA-to-YA) for 8-bit-to-16-bit case to keep more precision
1304
1305
0
   if (stbi__vertically_flip_on_load) {
1306
0
      int channels = req_comp ? req_comp : *comp;
1307
0
      stbi__vertical_flip(result, *x, *y, channels * sizeof(stbi__uint16));
1308
0
   }
1309
1310
0
   return (stbi__uint16 *) result;
1311
0
}
1312
1313
#if !defined(STBI_NO_HDR) && !defined(STBI_NO_LINEAR)
1314
static void stbi__float_postprocess(float *result, int *x, int *y, int *comp, int req_comp)
1315
0
{
1316
0
   if (stbi__vertically_flip_on_load && result != NULL) {
1317
0
      int channels = req_comp ? req_comp : *comp;
1318
0
      stbi__vertical_flip(result, *x, *y, channels * sizeof(float));
1319
0
   }
1320
0
}
1321
#endif
1322
1323
#ifndef STBI_NO_STDIO
1324
1325
#if defined(_WIN32) && defined(STBI_WINDOWS_UTF8)
1326
STBI_EXTERN __declspec(dllimport) int __stdcall MultiByteToWideChar(unsigned int cp, unsigned long flags, const char *str, int cbmb, wchar_t *widestr, int cchwide);
1327
STBI_EXTERN __declspec(dllimport) int __stdcall WideCharToMultiByte(unsigned int cp, unsigned long flags, const wchar_t *widestr, int cchwide, char *str, int cbmb, const char *defchar, int *used_default);
1328
#endif
1329
1330
#if defined(_WIN32) && defined(STBI_WINDOWS_UTF8)
1331
STBIDEF int stbi_convert_wchar_to_utf8(char *buffer, size_t bufferlen, const wchar_t* input)
1332
{
1333
  return WideCharToMultiByte(65001 /* UTF8 */, 0, input, -1, buffer, (int) bufferlen, NULL, NULL);
1334
}
1335
#endif
1336
1337
static FILE *stbi__fopen(char const *filename, char const *mode)
1338
0
{
1339
0
   FILE *f;
1340
#if defined(_WIN32) && defined(STBI_WINDOWS_UTF8)
1341
   wchar_t wMode[64];
1342
   wchar_t wFilename[1024];
1343
  if (0 == MultiByteToWideChar(65001 /* UTF8 */, 0, filename, -1, wFilename, sizeof(wFilename)/sizeof(*wFilename)))
1344
      return 0;
1345
1346
  if (0 == MultiByteToWideChar(65001 /* UTF8 */, 0, mode, -1, wMode, sizeof(wMode)/sizeof(*wMode)))
1347
      return 0;
1348
1349
#if defined(_MSC_VER) && _MSC_VER >= 1400
1350
  if (0 != _wfopen_s(&f, wFilename, wMode))
1351
    f = 0;
1352
#else
1353
   f = _wfopen(wFilename, wMode);
1354
#endif
1355
1356
#elif defined(_MSC_VER) && _MSC_VER >= 1400
1357
   if (0 != fopen_s(&f, filename, mode))
1358
      f=0;
1359
#else
1360
0
   f = fopen(filename, mode);
1361
0
#endif
1362
0
   return f;
1363
0
}
1364
1365
1366
STBIDEF stbi_uc *stbi_load(char const *filename, int *x, int *y, int *comp, int req_comp)
1367
0
{
1368
0
   FILE *f = stbi__fopen(filename, "rb");
1369
0
   unsigned char *result;
1370
0
   if (!f) return stbi__errpuc("can't fopen", "Unable to open file");
1371
0
   result = stbi_load_from_file(f,x,y,comp,req_comp);
1372
0
   fclose(f);
1373
0
   return result;
1374
0
}
1375
1376
STBIDEF stbi_uc *stbi_load_from_file(FILE *f, int *x, int *y, int *comp, int req_comp)
1377
0
{
1378
0
   unsigned char *result;
1379
0
   stbi__context s;
1380
0
   stbi__start_file(&s,f);
1381
0
   result = stbi__load_and_postprocess_8bit(&s,x,y,comp,req_comp);
1382
0
   if (result) {
1383
      // need to 'unget' all the characters in the IO buffer
1384
0
      fseek(f, - (int) (s.img_buffer_end - s.img_buffer), SEEK_CUR);
1385
0
   }
1386
0
   return result;
1387
0
}
1388
1389
STBIDEF stbi__uint16 *stbi_load_from_file_16(FILE *f, int *x, int *y, int *comp, int req_comp)
1390
0
{
1391
0
   stbi__uint16 *result;
1392
0
   stbi__context s;
1393
0
   stbi__start_file(&s,f);
1394
0
   result = stbi__load_and_postprocess_16bit(&s,x,y,comp,req_comp);
1395
0
   if (result) {
1396
      // need to 'unget' all the characters in the IO buffer
1397
0
      fseek(f, - (int) (s.img_buffer_end - s.img_buffer), SEEK_CUR);
1398
0
   }
1399
0
   return result;
1400
0
}
1401
1402
STBIDEF stbi_us *stbi_load_16(char const *filename, int *x, int *y, int *comp, int req_comp)
1403
0
{
1404
0
   FILE *f = stbi__fopen(filename, "rb");
1405
0
   stbi__uint16 *result;
1406
0
   if (!f) return (stbi_us *) stbi__errpuc("can't fopen", "Unable to open file");
1407
0
   result = stbi_load_from_file_16(f,x,y,comp,req_comp);
1408
0
   fclose(f);
1409
0
   return result;
1410
0
}
1411
1412
1413
#endif //!STBI_NO_STDIO
1414
1415
STBIDEF stbi_us *stbi_load_16_from_memory(stbi_uc const *buffer, int len, int *x, int *y, int *channels_in_file, int desired_channels)
1416
0
{
1417
0
   stbi__context s;
1418
0
   stbi__start_mem(&s,buffer,len);
1419
0
   return stbi__load_and_postprocess_16bit(&s,x,y,channels_in_file,desired_channels);
1420
0
}
1421
1422
STBIDEF stbi_us *stbi_load_16_from_callbacks(stbi_io_callbacks const *clbk, void *user, int *x, int *y, int *channels_in_file, int desired_channels)
1423
0
{
1424
0
   stbi__context s;
1425
0
   stbi__start_callbacks(&s, (stbi_io_callbacks *)clbk, user);
1426
0
   return stbi__load_and_postprocess_16bit(&s,x,y,channels_in_file,desired_channels);
1427
0
}
1428
1429
STBIDEF stbi_uc *stbi_load_from_memory(stbi_uc const *buffer, int len, int *x, int *y, int *comp, int req_comp)
1430
4.85k
{
1431
4.85k
   stbi__context s;
1432
4.85k
   stbi__start_mem(&s,buffer,len);
1433
4.85k
   return stbi__load_and_postprocess_8bit(&s,x,y,comp,req_comp);
1434
4.85k
}
1435
1436
STBIDEF stbi_uc *stbi_load_from_callbacks(stbi_io_callbacks const *clbk, void *user, int *x, int *y, int *comp, int req_comp)
1437
0
{
1438
0
   stbi__context s;
1439
0
   stbi__start_callbacks(&s, (stbi_io_callbacks *) clbk, user);
1440
0
   return stbi__load_and_postprocess_8bit(&s,x,y,comp,req_comp);
1441
0
}
1442
1443
#ifndef STBI_NO_GIF
1444
STBIDEF stbi_uc *stbi_load_gif_from_memory(stbi_uc const *buffer, int len, int **delays, int *x, int *y, int *z, int *comp, int req_comp)
1445
0
{
1446
0
   unsigned char *result;
1447
0
   stbi__context s;
1448
0
   stbi__start_mem(&s,buffer,len);
1449
1450
0
   result = (unsigned char*) stbi__load_gif_main(&s, delays, x, y, z, comp, req_comp);
1451
0
   if (stbi__vertically_flip_on_load) {
1452
0
      stbi__vertical_flip_slices( result, *x, *y, *z, *comp );
1453
0
   }
1454
1455
0
   return result;
1456
0
}
1457
#endif
1458
1459
#ifndef STBI_NO_LINEAR
1460
static float *stbi__loadf_main(stbi__context *s, int *x, int *y, int *comp, int req_comp)
1461
0
{
1462
0
   unsigned char *data;
1463
0
   #ifndef STBI_NO_HDR
1464
0
   if (stbi__hdr_test(s)) {
1465
0
      stbi__result_info ri;
1466
0
      float *hdr_data = stbi__hdr_load(s,x,y,comp,req_comp, &ri);
1467
0
      if (hdr_data)
1468
0
         stbi__float_postprocess(hdr_data,x,y,comp,req_comp);
1469
0
      return hdr_data;
1470
0
   }
1471
0
   #endif
1472
0
   data = stbi__load_and_postprocess_8bit(s, x, y, comp, req_comp);
1473
0
   if (data)
1474
0
      return stbi__ldr_to_hdr(data, *x, *y, req_comp ? req_comp : *comp);
1475
0
   return stbi__errpf("unknown image type", "Image not of any known type, or corrupt");
1476
0
}
1477
1478
STBIDEF float *stbi_loadf_from_memory(stbi_uc const *buffer, int len, int *x, int *y, int *comp, int req_comp)
1479
0
{
1480
0
   stbi__context s;
1481
0
   stbi__start_mem(&s,buffer,len);
1482
0
   return stbi__loadf_main(&s,x,y,comp,req_comp);
1483
0
}
1484
1485
STBIDEF float *stbi_loadf_from_callbacks(stbi_io_callbacks const *clbk, void *user, int *x, int *y, int *comp, int req_comp)
1486
0
{
1487
0
   stbi__context s;
1488
0
   stbi__start_callbacks(&s, (stbi_io_callbacks *) clbk, user);
1489
0
   return stbi__loadf_main(&s,x,y,comp,req_comp);
1490
0
}
1491
1492
#ifndef STBI_NO_STDIO
1493
STBIDEF float *stbi_loadf(char const *filename, int *x, int *y, int *comp, int req_comp)
1494
0
{
1495
0
   float *result;
1496
0
   FILE *f = stbi__fopen(filename, "rb");
1497
0
   if (!f) return stbi__errpf("can't fopen", "Unable to open file");
1498
0
   result = stbi_loadf_from_file(f,x,y,comp,req_comp);
1499
0
   fclose(f);
1500
0
   return result;
1501
0
}
1502
1503
STBIDEF float *stbi_loadf_from_file(FILE *f, int *x, int *y, int *comp, int req_comp)
1504
0
{
1505
0
   stbi__context s;
1506
0
   stbi__start_file(&s,f);
1507
0
   return stbi__loadf_main(&s,x,y,comp,req_comp);
1508
0
}
1509
#endif // !STBI_NO_STDIO
1510
1511
#endif // !STBI_NO_LINEAR
1512
1513
// these is-hdr-or-not is defined independent of whether STBI_NO_LINEAR is
1514
// defined, for API simplicity; if STBI_NO_LINEAR is defined, it always
1515
// reports false!
1516
1517
STBIDEF int stbi_is_hdr_from_memory(stbi_uc const *buffer, int len)
1518
0
{
1519
   #ifndef STBI_NO_HDR
1520
   stbi__context s;
1521
   stbi__start_mem(&s,buffer,len);
1522
   return stbi__hdr_test(&s);
1523
   #else
1524
0
   STBI_NOTUSED(buffer);
1525
0
   STBI_NOTUSED(len);
1526
   return 0;
1527
   #endif
1528
0
}
Unexecuted instantiation: stbi_is_hdr_from_memory
Unexecuted instantiation: stbi_is_hdr_from_memory
1529
1530
#ifndef STBI_NO_STDIO
1531
STBIDEF int      stbi_is_hdr          (char const *filename)
1532
0
{
1533
0
   FILE *f = stbi__fopen(filename, "rb");
1534
0
   int result=0;
1535
0
   if (f) {
1536
0
      result = stbi_is_hdr_from_file(f);
1537
0
      fclose(f);
1538
0
   }
1539
0
   return result;
1540
0
}
1541
1542
STBIDEF int stbi_is_hdr_from_file(FILE *f)
1543
0
{
1544
   #ifndef STBI_NO_HDR
1545
   long pos = ftell(f);
1546
   int res;
1547
   stbi__context s;
1548
   stbi__start_file(&s,f);
1549
   res = stbi__hdr_test(&s);
1550
   fseek(f, pos, SEEK_SET);
1551
   return res;
1552
   #else
1553
0
   STBI_NOTUSED(f);
1554
   return 0;
1555
   #endif
1556
0
}
Unexecuted instantiation: stbi_is_hdr_from_file
Unexecuted instantiation: stbi_is_hdr_from_file
1557
#endif // !STBI_NO_STDIO
1558
1559
STBIDEF int      stbi_is_hdr_from_callbacks(stbi_io_callbacks const *clbk, void *user)
1560
0
{
1561
   #ifndef STBI_NO_HDR
1562
   stbi__context s;
1563
   stbi__start_callbacks(&s, (stbi_io_callbacks *) clbk, user);
1564
   return stbi__hdr_test(&s);
1565
   #else
1566
0
   STBI_NOTUSED(clbk);
1567
0
   STBI_NOTUSED(user);
1568
   return 0;
1569
   #endif
1570
0
}
Unexecuted instantiation: stbi_is_hdr_from_callbacks
Unexecuted instantiation: stbi_is_hdr_from_callbacks
1571
1572
#ifndef STBI_NO_LINEAR
1573
static float stbi__l2h_gamma=2.2f, stbi__l2h_scale=1.0f;
1574
1575
0
STBIDEF void   stbi_ldr_to_hdr_gamma(float gamma) { stbi__l2h_gamma = gamma; }
1576
0
STBIDEF void   stbi_ldr_to_hdr_scale(float scale) { stbi__l2h_scale = scale; }
1577
#endif
1578
1579
static float stbi__h2l_gamma_i=1.0f/2.2f, stbi__h2l_scale_i=1.0f;
1580
1581
0
STBIDEF void   stbi_hdr_to_ldr_gamma(float gamma) { stbi__h2l_gamma_i = 1/gamma; }
1582
0
STBIDEF void   stbi_hdr_to_ldr_scale(float scale) { stbi__h2l_scale_i = 1/scale; }
1583
1584
1585
//////////////////////////////////////////////////////////////////////////////
1586
//
1587
// Common code used by all image loaders
1588
//
1589
1590
enum
1591
{
1592
   STBI__SCAN_load=0,
1593
   STBI__SCAN_type,
1594
   STBI__SCAN_header
1595
};
1596
1597
static void stbi__refill_buffer(stbi__context *s)
1598
0
{
1599
0
   int n = (s->io.read)(s->io_user_data,(char*)s->buffer_start,s->buflen);
1600
0
   s->callback_already_read += (int) (s->img_buffer - s->img_buffer_original);
1601
0
   if (n == 0) {
1602
      // at end of file, treat same as if from memory, but need to handle case
1603
      // where s->img_buffer isn't pointing to safe memory, e.g. 0-byte file
1604
0
      s->read_from_callbacks = 0;
1605
0
      s->img_buffer = s->buffer_start;
1606
0
      s->img_buffer_end = s->buffer_start+1;
1607
0
      *s->img_buffer = 0;
1608
0
   } else {
1609
0
      s->img_buffer = s->buffer_start;
1610
0
      s->img_buffer_end = s->buffer_start + n;
1611
0
   }
1612
0
}
1613
1614
stbi_inline static stbi_uc stbi__get8(stbi__context *s)
1615
5.88G
{
1616
5.88G
   if (s->img_buffer < s->img_buffer_end)
1617
1.76M
      return *s->img_buffer++;
1618
5.88G
   if (s->read_from_callbacks) {
1619
0
      stbi__refill_buffer(s);
1620
0
      return *s->img_buffer++;
1621
0
   }
1622
5.88G
   return 0;
1623
5.88G
}
1624
1625
#if defined(STBI_NO_JPEG) && defined(STBI_NO_HDR) && defined(STBI_NO_PIC) && defined(STBI_NO_PNM)
1626
// nothing
1627
#else
1628
stbi_inline static int stbi__at_eof(stbi__context *s)
1629
390k
{
1630
390k
   if (s->io.read) {
1631
0
      if (!(s->io.eof)(s->io_user_data)) return 0;
1632
      // if feof() is true, check if buffer = end
1633
      // special case: we've only got the special 0 character at the end
1634
0
      if (s->read_from_callbacks == 0) return 1;
1635
0
   }
1636
1637
390k
   return s->img_buffer >= s->img_buffer_end;
1638
390k
}
1639
#endif
1640
1641
#if defined(STBI_NO_JPEG) && defined(STBI_NO_PNG) && defined(STBI_NO_BMP) && defined(STBI_NO_PSD) && defined(STBI_NO_TGA) && defined(STBI_NO_GIF) && defined(STBI_NO_PIC)
1642
// nothing
1643
#else
1644
static void stbi__skip(stbi__context *s, int n)
1645
399M
{
1646
399M
   if (n == 0) return;  // already there!
1647
100M
   if (n < 0) {
1648
188
      s->img_buffer = s->img_buffer_end;
1649
188
      return;
1650
188
   }
1651
100M
   if (s->io.read) {
1652
0
      int blen = (int) (s->img_buffer_end - s->img_buffer);
1653
0
      if (blen < n) {
1654
0
         s->img_buffer = s->img_buffer_end;
1655
0
         (s->io.skip)(s->io_user_data, n - blen);
1656
0
         return;
1657
0
      }
1658
0
   }
1659
100M
   s->img_buffer += n;
1660
100M
}
1661
#endif
1662
1663
#if defined(STBI_NO_PNG) && defined(STBI_NO_TGA) && defined(STBI_NO_HDR) && defined(STBI_NO_PNM)
1664
// nothing
1665
#else
1666
static int stbi__getn(stbi__context *s, stbi_uc *buffer, int n)
1667
200M
{
1668
200M
   if (s->io.read) {
1669
0
      int blen = (int) (s->img_buffer_end - s->img_buffer);
1670
0
      if (blen < n) {
1671
0
         int res, count;
1672
1673
0
         memcpy(buffer, s->img_buffer, blen);
1674
1675
0
         count = (s->io.read)(s->io_user_data, (char*) buffer + blen, n - blen);
1676
0
         res = (count == (n-blen));
1677
0
         s->img_buffer = s->img_buffer_end;
1678
0
         return res;
1679
0
      }
1680
0
   }
1681
1682
200M
   if (s->img_buffer+n <= s->img_buffer_end) {
1683
4.01k
      memcpy(buffer, s->img_buffer, n);
1684
4.01k
      s->img_buffer += n;
1685
4.01k
      return 1;
1686
4.01k
   } else
1687
200M
      return 0;
1688
200M
}
1689
#endif
1690
1691
#if defined(STBI_NO_JPEG) && defined(STBI_NO_PNG) && defined(STBI_NO_PSD) && defined(STBI_NO_PIC)
1692
// nothing
1693
#else
1694
static int stbi__get16be(stbi__context *s)
1695
217M
{
1696
217M
   int z = stbi__get8(s);
1697
217M
   return (z << 8) + stbi__get8(s);
1698
217M
}
1699
#endif
1700
1701
#if defined(STBI_NO_PNG) && defined(STBI_NO_PSD) && defined(STBI_NO_PIC)
1702
// nothing
1703
#else
1704
static stbi__uint32 stbi__get32be(stbi__context *s)
1705
55.3k
{
1706
55.3k
   stbi__uint32 z = stbi__get16be(s);
1707
55.3k
   return (z << 16) + stbi__get16be(s);
1708
55.3k
}
1709
#endif
1710
1711
#if defined(STBI_NO_BMP) && defined(STBI_NO_TGA) && defined(STBI_NO_GIF)
1712
// nothing
1713
#else
1714
static int stbi__get16le(stbi__context *s)
1715
529M
{
1716
529M
   int z = stbi__get8(s);
1717
529M
   return z + (stbi__get8(s) << 8);
1718
529M
}
1719
#endif
1720
1721
#ifndef STBI_NO_BMP
1722
static stbi__uint32 stbi__get32le(stbi__context *s)
1723
113M
{
1724
113M
   stbi__uint32 z = stbi__get16le(s);
1725
113M
   z += (stbi__uint32)stbi__get16le(s) << 16;
1726
113M
   return z;
1727
113M
}
1728
#endif
1729
1730
1.52G
#define STBI__BYTECAST(x)  ((stbi_uc) ((x) & 255))  // truncate int to byte without warnings
1731
1732
#if defined(STBI_NO_JPEG) && defined(STBI_NO_PNG) && defined(STBI_NO_BMP) && defined(STBI_NO_PSD) && defined(STBI_NO_TGA) && defined(STBI_NO_GIF) && defined(STBI_NO_PIC) && defined(STBI_NO_PNM)
1733
// nothing
1734
#else
1735
//////////////////////////////////////////////////////////////////////////////
1736
//
1737
//  generic converter from built-in img_n to req_comp
1738
//    individual types do this automatically as much as possible (e.g. jpeg
1739
//    does all cases internally since it needs to colorspace convert anyway,
1740
//    and it never has alpha, so very few cases ). png can automatically
1741
//    interleave an alpha=255 channel, but falls back to this for other cases
1742
//
1743
//  assume data buffer is malloced, so malloc a new one and free that one
1744
//  only failure mode is malloc failing
1745
1746
static stbi_uc stbi__compute_y(int r, int g, int b)
1747
0
{
1748
0
   return (stbi_uc) (((r*77) + (g*150) +  (29*b)) >> 8);
1749
0
}
1750
#endif
1751
1752
#if defined(STBI_NO_PNG) && defined(STBI_NO_BMP) && defined(STBI_NO_PSD) && defined(STBI_NO_TGA) && defined(STBI_NO_GIF) && defined(STBI_NO_PIC) && defined(STBI_NO_PNM)
1753
// nothing
1754
#else
1755
static unsigned char *stbi__convert_format(unsigned char *data, int img_n, int req_comp, unsigned int x, unsigned int y)
1756
447
{
1757
447
   int i,j;
1758
447
   unsigned char *good;
1759
1760
447
   if (req_comp == img_n) return data;
1761
266
   STBI_ASSERT(req_comp >= 1 && req_comp <= 4);
1762
1763
266
   good = (unsigned char *) stbi__malloc_mad3(req_comp, x, y, 0);
1764
266
   if (good == NULL) {
1765
0
      STBI_FREE(data);
1766
0
      return stbi__errpuc("outofmem", "Out of memory");
1767
0
   }
1768
1769
1.58M
   for (j=0; j < (int) y; ++j) {
1770
1.58M
      unsigned char *src  = data + j * x * img_n   ;
1771
1.58M
      unsigned char *dest = good + j * x * req_comp;
1772
1773
3.16M
      #define STBI__COMBO(a,b)  ((a)*8+(b))
1774
883M
      #define STBI__CASE(a,b)   case STBI__COMBO(a,b): for(i=x-1; i >= 0; --i, src += a, dest += b)
1775
      // convert source image with img_n components to one with req_comp components;
1776
      // avoid switch per pixel, so use switch per scanline and massive macros
1777
1.58M
      switch (STBI__COMBO(img_n, req_comp)) {
1778
0
         STBI__CASE(1,2) { dest[0]=src[0]; dest[1]=255;                                     } break;
1779
0
         STBI__CASE(1,3) { dest[0]=dest[1]=dest[2]=src[0];                                  } break;
1780
368M
         STBI__CASE(1,4) { dest[0]=dest[1]=dest[2]=src[0]; dest[3]=255;                     } break;
1781
0
         STBI__CASE(2,1) { dest[0]=src[0];                                                  } break;
1782
0
         STBI__CASE(2,3) { dest[0]=dest[1]=dest[2]=src[0];                                  } break;
1783
135M
         STBI__CASE(2,4) { dest[0]=dest[1]=dest[2]=src[0]; dest[3]=src[1];                  } break;
1784
376M
         STBI__CASE(3,4) { dest[0]=src[0];dest[1]=src[1];dest[2]=src[2];dest[3]=255;        } break;
1785
0
         STBI__CASE(3,1) { dest[0]=stbi__compute_y(src[0],src[1],src[2]);                   } break;
1786
0
         STBI__CASE(3,2) { dest[0]=stbi__compute_y(src[0],src[1],src[2]); dest[1] = 255;    } break;
1787
0
         STBI__CASE(4,1) { dest[0]=stbi__compute_y(src[0],src[1],src[2]);                   } break;
1788
0
         STBI__CASE(4,2) { dest[0]=stbi__compute_y(src[0],src[1],src[2]); dest[1] = src[3]; } break;
1789
0
         STBI__CASE(4,3) { dest[0]=src[0];dest[1]=src[1];dest[2]=src[2];                    } break;
1790
0
         default: STBI_ASSERT(0); STBI_FREE(data); STBI_FREE(good); return stbi__errpuc("unsupported", "Unsupported format conversion");
1791
1.58M
      }
1792
1.58M
      #undef STBI__CASE
1793
1.58M
   }
1794
1795
266
   STBI_FREE(data);
1796
266
   return good;
1797
266
}
1798
#endif
1799
1800
#if defined(STBI_NO_PNG) && defined(STBI_NO_PSD)
1801
// nothing
1802
#else
1803
static stbi__uint16 stbi__compute_y_16(int r, int g, int b)
1804
0
{
1805
0
   return (stbi__uint16) (((r*77) + (g*150) +  (29*b)) >> 8);
1806
0
}
1807
#endif
1808
1809
#if defined(STBI_NO_PNG) && defined(STBI_NO_PSD)
1810
// nothing
1811
#else
1812
static stbi__uint16 *stbi__convert_format16(stbi__uint16 *data, int img_n, int req_comp, unsigned int x, unsigned int y)
1813
104
{
1814
104
   int i,j;
1815
104
   stbi__uint16 *good;
1816
1817
104
   if (req_comp == img_n) return data;
1818
104
   STBI_ASSERT(req_comp >= 1 && req_comp <= 4);
1819
1820
104
   good = (stbi__uint16 *) stbi__malloc(req_comp * x * y * 2);
1821
104
   if (good == NULL) {
1822
0
      STBI_FREE(data);
1823
0
      return (stbi__uint16 *) stbi__errpuc("outofmem", "Out of memory");
1824
0
   }
1825
1826
137k
   for (j=0; j < (int) y; ++j) {
1827
137k
      stbi__uint16 *src  = data + j * x * img_n   ;
1828
137k
      stbi__uint16 *dest = good + j * x * req_comp;
1829
1830
275k
      #define STBI__COMBO(a,b)  ((a)*8+(b))
1831
224M
      #define STBI__CASE(a,b)   case STBI__COMBO(a,b): for(i=x-1; i >= 0; --i, src += a, dest += b)
1832
      // convert source image with img_n components to one with req_comp components;
1833
      // avoid switch per pixel, so use switch per scanline and massive macros
1834
137k
      switch (STBI__COMBO(img_n, req_comp)) {
1835
0
         STBI__CASE(1,2) { dest[0]=src[0]; dest[1]=0xffff;                                     } break;
1836
0
         STBI__CASE(1,3) { dest[0]=dest[1]=dest[2]=src[0];                                     } break;
1837
223M
         STBI__CASE(1,4) { dest[0]=dest[1]=dest[2]=src[0]; dest[3]=0xffff;                     } break;
1838
0
         STBI__CASE(2,1) { dest[0]=src[0];                                                     } break;
1839
0
         STBI__CASE(2,3) { dest[0]=dest[1]=dest[2]=src[0];                                     } break;
1840
136k
         STBI__CASE(2,4) { dest[0]=dest[1]=dest[2]=src[0]; dest[3]=src[1];                     } break;
1841
1.38k
         STBI__CASE(3,4) { dest[0]=src[0];dest[1]=src[1];dest[2]=src[2];dest[3]=0xffff;        } break;
1842
0
         STBI__CASE(3,1) { dest[0]=stbi__compute_y_16(src[0],src[1],src[2]);                   } break;
1843
0
         STBI__CASE(3,2) { dest[0]=stbi__compute_y_16(src[0],src[1],src[2]); dest[1] = 0xffff; } break;
1844
0
         STBI__CASE(4,1) { dest[0]=stbi__compute_y_16(src[0],src[1],src[2]);                   } break;
1845
0
         STBI__CASE(4,2) { dest[0]=stbi__compute_y_16(src[0],src[1],src[2]); dest[1] = src[3]; } break;
1846
0
         STBI__CASE(4,3) { dest[0]=src[0];dest[1]=src[1];dest[2]=src[2];                       } break;
1847
0
         default: STBI_ASSERT(0); STBI_FREE(data); STBI_FREE(good); return (stbi__uint16*) stbi__errpuc("unsupported", "Unsupported format conversion");
1848
137k
      }
1849
137k
      #undef STBI__CASE
1850
137k
   }
1851
1852
104
   STBI_FREE(data);
1853
104
   return good;
1854
104
}
1855
#endif
1856
1857
#ifndef STBI_NO_LINEAR
1858
static float   *stbi__ldr_to_hdr(stbi_uc *data, int x, int y, int comp)
1859
0
{
1860
0
   int i,k,n;
1861
0
   float *output;
1862
0
   if (!data) return NULL;
1863
0
   output = (float *) stbi__malloc_mad4(x, y, comp, sizeof(float), 0);
1864
0
   if (output == NULL) { STBI_FREE(data); return stbi__errpf("outofmem", "Out of memory"); }
1865
   // compute number of non-alpha components
1866
0
   if (comp & 1) n = comp; else n = comp-1;
1867
0
   for (i=0; i < x*y; ++i) {
1868
0
      for (k=0; k < n; ++k) {
1869
0
         output[i*comp + k] = (float) (pow(data[i*comp+k]/255.0f, stbi__l2h_gamma) * stbi__l2h_scale);
1870
0
      }
1871
0
   }
1872
0
   if (n < comp) {
1873
0
      for (i=0; i < x*y; ++i) {
1874
0
         output[i*comp + n] = data[i*comp + n]/255.0f;
1875
0
      }
1876
0
   }
1877
0
   STBI_FREE(data);
1878
0
   return output;
1879
0
}
1880
#endif
1881
1882
#ifndef STBI_NO_HDR
1883
799M
#define stbi__float2int(x)   ((int) (x))
1884
static stbi_uc *stbi__hdr_to_ldr(float   *data, int x, int y, int comp)
1885
373
{
1886
373
   int i,k,n;
1887
373
   stbi_uc *output;
1888
373
   if (!data) return NULL;
1889
260
   output = (stbi_uc *) stbi__malloc_mad3(x, y, comp, 0);
1890
260
   if (output == NULL) { STBI_FREE(data); return stbi__errpuc("outofmem", "Out of memory"); }
1891
   // compute number of non-alpha components
1892
260
   if (comp & 1) n = comp; else n = comp-1;
1893
199M
   for (i=0; i < x*y; ++i) {
1894
799M
      for (k=0; k < n; ++k) {
1895
599M
         float z = (float) pow(data[i*comp+k]*stbi__h2l_scale_i, stbi__h2l_gamma_i) * 255 + 0.5f;
1896
599M
         if (z < 0) z = 0;
1897
599M
         if (z > 255) z = 255;
1898
599M
         output[i*comp + k] = (stbi_uc) stbi__float2int(z);
1899
599M
      }
1900
199M
      if (k < comp) {
1901
199M
         float z = data[i*comp+k] * 255 + 0.5f;
1902
199M
         if (z < 0) z = 0;
1903
199M
         if (z > 255) z = 255;
1904
199M
         output[i*comp + k] = (stbi_uc) stbi__float2int(z);
1905
199M
      }
1906
199M
   }
1907
260
   STBI_FREE(data);
1908
260
   return output;
1909
260
}
1910
#endif
1911
1912
//////////////////////////////////////////////////////////////////////////////
1913
//
1914
//  "baseline" JPEG/JFIF decoder
1915
//
1916
//    simple implementation
1917
//      - doesn't support delayed output of y-dimension
1918
//      - simple interface (only one output format: 8-bit interleaved RGB)
1919
//      - doesn't try to recover corrupt jpegs
1920
//      - doesn't allow partial loading, loading multiple at once
1921
//      - still fast on x86 (copying globals into locals doesn't help x86)
1922
//      - allocates lots of intermediate memory (full size of all components)
1923
//        - non-interleaved case requires this anyway
1924
//        - allows good upsampling (see next)
1925
//    high-quality
1926
//      - upsampled channels are bilinearly interpolated, even across blocks
1927
//      - quality integer IDCT derived from IJG's 'slow'
1928
//    performance
1929
//      - fast huffman; reasonable integer IDCT
1930
//      - some SIMD kernels for common paths on targets with SSE2/NEON
1931
//      - uses a lot of intermediate memory, could cache poorly
1932
1933
#ifndef STBI_NO_JPEG
1934
1935
// huffman decoding acceleration
1936
13.4G
#define FAST_BITS   9  // larger handles more cases; smaller stomps less cache
1937
1938
typedef struct
1939
{
1940
   stbi_uc  fast[1 << FAST_BITS];
1941
   // weirdly, repacking this into AoS is a 10% speed loss, instead of a win
1942
   stbi__uint16 code[256];
1943
   stbi_uc  values[256];
1944
   stbi_uc  size[257];
1945
   unsigned int maxcode[18];
1946
   int    delta[17];   // old 'firstsymbol' - old 'firstcode'
1947
} stbi__huffman;
1948
1949
typedef struct
1950
{
1951
   stbi__context *s;
1952
   stbi__huffman huff_dc[4];
1953
   stbi__huffman huff_ac[4];
1954
   stbi__uint16 dequant[4][64];
1955
   stbi__int16 fast_ac[4][1 << FAST_BITS];
1956
1957
// sizes for components, interleaved MCUs
1958
   int img_h_max, img_v_max;
1959
   int img_mcu_x, img_mcu_y;
1960
   int img_mcu_w, img_mcu_h;
1961
1962
// definition of jpeg image component
1963
   struct
1964
   {
1965
      int id;
1966
      int h,v;
1967
      int tq;
1968
      int hd,ha;
1969
      int dc_pred;
1970
1971
      int x,y,w2,h2;
1972
      stbi_uc *data;
1973
      void *raw_data, *raw_coeff;
1974
      stbi_uc *linebuf;
1975
      short   *coeff;   // progressive only
1976
      int      coeff_w, coeff_h; // number of 8x8 coefficient blocks
1977
   } img_comp[4];
1978
1979
   stbi__uint32   code_buffer; // jpeg entropy-coded buffer
1980
   int            code_bits;   // number of valid bits
1981
   unsigned char  marker;      // marker seen while filling entropy buffer
1982
   int            nomore;      // flag if we saw a marker so must stop
1983
1984
   int            progressive;
1985
   int            spec_start;
1986
   int            spec_end;
1987
   int            succ_high;
1988
   int            succ_low;
1989
   int            eob_run;
1990
   int            jfif;
1991
   int            app14_color_transform; // Adobe APP14 tag
1992
   int            rgb;
1993
1994
   int scan_n, order[4];
1995
   int restart_interval, todo;
1996
1997
// kernels
1998
   void (*idct_block_kernel)(stbi_uc *out, int out_stride, short data[64]);
1999
   void (*YCbCr_to_RGB_kernel)(stbi_uc *out, const stbi_uc *y, const stbi_uc *pcb, const stbi_uc *pcr, int count, int step);
2000
   stbi_uc *(*resample_row_hv_2_kernel)(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs);
2001
} stbi__jpeg;
2002
2003
static int stbi__build_huffman(stbi__huffman *h, int *count)
2004
85.1k
{
2005
85.1k
   int i,j,k=0;
2006
85.1k
   unsigned int code;
2007
   // build size list for each symbol (from JPEG spec)
2008
1.44M
   for (i=0; i < 16; ++i) {
2009
1.39M
      for (j=0; j < count[i]; ++j) {
2010
35.7k
         h->size[k++] = (stbi_uc) (i+1);
2011
35.7k
         if(k >= 257) return stbi__err("bad size list","Corrupt JPEG");
2012
35.7k
      }
2013
1.36M
   }
2014
85.1k
   h->size[k] = 0;
2015
2016
   // compute actual symbols (from jpeg spec)
2017
85.1k
   code = 0;
2018
85.1k
   k = 0;
2019
1.44M
   for(j=1; j <= 16; ++j) {
2020
      // compute delta to add to code to compute symbol id
2021
1.36M
      h->delta[j] = k - code;
2022
1.36M
      if (h->size[k] == j) {
2023
45.7k
         while (h->size[k] == j)
2024
34.9k
            h->code[k++] = (stbi__uint16) (code++);
2025
10.7k
         if (code-1 >= (1u << j)) return stbi__err("bad code lengths","Corrupt JPEG");
2026
10.7k
      }
2027
      // compute largest code + 1 for this size, preshifted as needed later
2028
1.36M
      h->maxcode[j] = code << (16-j);
2029
1.36M
      code <<= 1;
2030
1.36M
   }
2031
85.0k
   h->maxcode[j] = 0xffffffff;
2032
2033
   // build non-spec acceleration table; 255 is flag for not-accelerated
2034
85.0k
   memset(h->fast, 255, 1 << FAST_BITS);
2035
115k
   for (i=0; i < k; ++i) {
2036
30.5k
      int s = h->size[i];
2037
30.5k
      if (s <= FAST_BITS) {
2038
19.9k
         int c = h->code[i] << (FAST_BITS-s);
2039
19.9k
         int m = 1 << (FAST_BITS-s);
2040
1.34M
         for (j=0; j < m; ++j) {
2041
1.32M
            h->fast[c+j] = (stbi_uc) i;
2042
1.32M
         }
2043
19.9k
      }
2044
30.5k
   }
2045
85.0k
   return 1;
2046
85.1k
}
2047
2048
// build a table that decodes both magnitude and value of small ACs in
2049
// one go.
2050
static void stbi__build_fast_ac(stbi__int16 *fast_ac, stbi__huffman *h)
2051
2.69k
{
2052
2.69k
   int i;
2053
1.38M
   for (i=0; i < (1 << FAST_BITS); ++i) {
2054
1.38M
      stbi_uc fast = h->fast[i];
2055
1.38M
      fast_ac[i] = 0;
2056
1.38M
      if (fast < 255) {
2057
1.16M
         int rs = h->values[fast];
2058
1.16M
         int run = (rs >> 4) & 15;
2059
1.16M
         int magbits = rs & 15;
2060
1.16M
         int len = h->size[fast];
2061
2062
1.16M
         if (magbits && len + magbits <= FAST_BITS) {
2063
            // magnitude code followed by receive_extend code
2064
1.00M
            int k = ((i << len) & ((1 << FAST_BITS) - 1)) >> (FAST_BITS - magbits);
2065
1.00M
            int m = 1 << (magbits - 1);
2066
1.00M
            if (k < m) k += (~0U << magbits) + 1;
2067
            // if the result is small enough, we can fit it in fast_ac table
2068
1.00M
            if (k >= -128 && k <= 127)
2069
489k
               fast_ac[i] = (stbi__int16) ((k * 256) + (run * 16) + (len + magbits));
2070
1.00M
         }
2071
1.16M
      }
2072
1.38M
   }
2073
2.69k
}
2074
2075
static void stbi__grow_buffer_unsafe(stbi__jpeg *j)
2076
1.25G
{
2077
2.54G
   do {
2078
2.54G
      unsigned int b = j->nomore ? 0 : stbi__get8(j->s);
2079
2.54G
      if (b == 0xff) {
2080
11.1k
         int c = stbi__get8(j->s);
2081
16.7k
         while (c == 0xff) c = stbi__get8(j->s); // consume fill bytes
2082
11.1k
         if (c != 0) {
2083
9.16k
            j->marker = (unsigned char) c;
2084
9.16k
            j->nomore = 1;
2085
9.16k
            return;
2086
9.16k
         }
2087
11.1k
      }
2088
2.54G
      j->code_buffer |= b << (24 - j->code_bits);
2089
2.54G
      j->code_bits += 8;
2090
2.54G
   } while (j->code_bits <= 24);
2091
1.25G
}
2092
2093
// (1 << n) - 1
2094
static const stbi__uint32 stbi__bmask[17]={0,1,3,7,15,31,63,127,255,511,1023,2047,4095,8191,16383,32767,65535};
2095
2096
// decode a jpeg huffman value from the bitstream
2097
stbi_inline static int stbi__jpeg_huff_decode(stbi__jpeg *j, stbi__huffman *h)
2098
193M
{
2099
193M
   unsigned int temp;
2100
193M
   int c,k;
2101
2102
193M
   if (j->code_bits < 16) stbi__grow_buffer_unsafe(j);
2103
2104
   // look at the top FAST_BITS and determine what symbol ID it is,
2105
   // if the code is <= FAST_BITS
2106
193M
   c = (j->code_buffer >> (32 - FAST_BITS)) & ((1 << FAST_BITS)-1);
2107
193M
   k = h->fast[c];
2108
193M
   if (k < 255) {
2109
176M
      int s = h->size[k];
2110
176M
      if (s > j->code_bits)
2111
1
         return -1;
2112
176M
      j->code_buffer <<= s;
2113
176M
      j->code_bits -= s;
2114
176M
      return h->values[k];
2115
176M
   }
2116
2117
   // naive test is to shift the code_buffer down so k bits are
2118
   // valid, then test against maxcode. To speed this up, we've
2119
   // preshifted maxcode left so that it has (16-k) 0s at the
2120
   // end; in other words, regardless of the number of bits, it
2121
   // wants to be compared against something shifted to have 16;
2122
   // that way we don't need to shift inside the loop.
2123
16.5M
   temp = j->code_buffer >> 16;
2124
88.4M
   for (k=FAST_BITS+1 ; ; ++k)
2125
104M
      if (temp < h->maxcode[k])
2126
16.5M
         break;
2127
16.5M
   if (k == 17) {
2128
      // error! code not found
2129
40
      j->code_bits -= 16;
2130
40
      return -1;
2131
40
   }
2132
2133
16.5M
   if (k > j->code_bits)
2134
3
      return -1;
2135
2136
   // convert the huffman code to the symbol id
2137
16.5M
   c = ((j->code_buffer >> (32 - k)) & stbi__bmask[k]) + h->delta[k];
2138
16.5M
   if(c < 0 || c >= 256) // symbol id out of bounds!
2139
0
       return -1;
2140
16.5M
   STBI_ASSERT((((j->code_buffer) >> (32 - h->size[c])) & stbi__bmask[h->size[c]]) == h->code[c]);
2141
2142
   // convert the id to a symbol
2143
16.5M
   j->code_bits -= k;
2144
16.5M
   j->code_buffer <<= k;
2145
16.5M
   return h->values[c];
2146
16.5M
}
2147
2148
// bias[n] = (-1<<n) + 1
2149
static const int stbi__jbias[16] = {0,-1,-3,-7,-15,-31,-63,-127,-255,-511,-1023,-2047,-4095,-8191,-16383,-32767};
2150
2151
// combined JPEG 'receive' and JPEG 'extend', since baseline
2152
// always extends everything it receives.
2153
stbi_inline static int stbi__extend_receive(stbi__jpeg *j, int n)
2154
64.0M
{
2155
64.0M
   unsigned int k;
2156
64.0M
   int sgn;
2157
64.0M
   if (j->code_bits < n) stbi__grow_buffer_unsafe(j);
2158
64.0M
   if (j->code_bits < n) return 0; // ran out of bits from stream, return 0s intead of continuing
2159
2160
64.0M
   sgn = j->code_buffer >> 31; // sign bit always in MSB; 0 if MSB clear (positive), 1 if MSB set (negative)
2161
64.0M
   k = stbi_lrot(j->code_buffer, n);
2162
64.0M
   j->code_buffer = k & ~stbi__bmask[n];
2163
64.0M
   k &= stbi__bmask[n];
2164
64.0M
   j->code_bits -= n;
2165
64.0M
   return k + (stbi__jbias[n] & (sgn - 1));
2166
64.0M
}
2167
2168
// get some unsigned bits
2169
stbi_inline static int stbi__jpeg_get_bits(stbi__jpeg *j, int n)
2170
533k
{
2171
533k
   unsigned int k;
2172
533k
   if (j->code_bits < n) stbi__grow_buffer_unsafe(j);
2173
533k
   if (j->code_bits < n) return 0; // ran out of bits from stream, return 0s intead of continuing
2174
532k
   k = stbi_lrot(j->code_buffer, n);
2175
532k
   j->code_buffer = k & ~stbi__bmask[n];
2176
532k
   k &= stbi__bmask[n];
2177
532k
   j->code_bits -= n;
2178
532k
   return k;
2179
533k
}
2180
2181
stbi_inline static int stbi__jpeg_get_bit(stbi__jpeg *j)
2182
182M
{
2183
182M
   unsigned int k;
2184
182M
   if (j->code_bits < 1) stbi__grow_buffer_unsafe(j);
2185
182M
   if (j->code_bits < 1) return 0; // ran out of bits from stream, return 0s intead of continuing
2186
182M
   k = j->code_buffer;
2187
182M
   j->code_buffer <<= 1;
2188
182M
   --j->code_bits;
2189
182M
   return k & 0x80000000;
2190
182M
}
2191
2192
// given a value that's at position X in the zigzag stream,
2193
// where does it appear in the 8x8 matrix coded as row-major?
2194
static const stbi_uc stbi__jpeg_dezigzag[64+15] =
2195
{
2196
    0,  1,  8, 16,  9,  2,  3, 10,
2197
   17, 24, 32, 25, 18, 11,  4,  5,
2198
   12, 19, 26, 33, 40, 48, 41, 34,
2199
   27, 20, 13,  6,  7, 14, 21, 28,
2200
   35, 42, 49, 56, 57, 50, 43, 36,
2201
   29, 22, 15, 23, 30, 37, 44, 51,
2202
   58, 59, 52, 45, 38, 31, 39, 46,
2203
   53, 60, 61, 54, 47, 55, 62, 63,
2204
   // let corrupt input sample past end
2205
   63, 63, 63, 63, 63, 63, 63, 63,
2206
   63, 63, 63, 63, 63, 63, 63
2207
};
2208
2209
// decode one 64-entry block--
2210
static int stbi__jpeg_decode_block(stbi__jpeg *j, short data[64], stbi__huffman *hdc, stbi__huffman *hac, stbi__int16 *fac, int b, stbi__uint16 *dequant)
2211
45.8M
{
2212
45.8M
   int diff,dc,k;
2213
45.8M
   int t;
2214
2215
45.8M
   if (j->code_bits < 16) stbi__grow_buffer_unsafe(j);
2216
45.8M
   t = stbi__jpeg_huff_decode(j, hdc);
2217
45.8M
   if (t < 0 || t > 15) return stbi__err("bad huffman code","Corrupt JPEG");
2218
2219
   // 0 all the ac values now so we can do it 32-bits at a time
2220
45.8M
   memset(data,0,64*sizeof(data[0]));
2221
2222
45.8M
   diff = t ? stbi__extend_receive(j, t) : 0;
2223
45.8M
   if (!stbi__addints_valid(j->img_comp[b].dc_pred, diff)) return stbi__err("bad delta","Corrupt JPEG");
2224
45.8M
   dc = j->img_comp[b].dc_pred + diff;
2225
45.8M
   j->img_comp[b].dc_pred = dc;
2226
45.8M
   if (!stbi__mul2shorts_valid(dc, dequant[0])) return stbi__err("can't merge dc and ac", "Corrupt JPEG");
2227
45.8M
   data[0] = (short) (dc * dequant[0]);
2228
2229
   // decode AC components, see JPEG spec
2230
45.8M
   k = 1;
2231
88.4M
   do {
2232
88.4M
      unsigned int zig;
2233
88.4M
      int c,r,s;
2234
88.4M
      if (j->code_bits < 16) stbi__grow_buffer_unsafe(j);
2235
88.4M
      c = (j->code_buffer >> (32 - FAST_BITS)) & ((1 << FAST_BITS)-1);
2236
88.4M
      r = fac[c];
2237
88.4M
      if (r) { // fast-AC path
2238
27.6M
         k += (r >> 4) & 15; // run
2239
27.6M
         s = r & 15; // combined length
2240
27.6M
         if (s > j->code_bits) return stbi__err("bad huffman code", "Combined length longer than code bits available");
2241
27.6M
         j->code_buffer <<= s;
2242
27.6M
         j->code_bits -= s;
2243
         // decode into unzigzag'd location
2244
27.6M
         zig = stbi__jpeg_dezigzag[k++];
2245
27.6M
         data[zig] = (short) ((r >> 8) * dequant[zig]);
2246
60.7M
      } else {
2247
60.7M
         int rs = stbi__jpeg_huff_decode(j, hac);
2248
60.7M
         if (rs < 0) return stbi__err("bad huffman code","Corrupt JPEG");
2249
60.7M
         s = rs & 15;
2250
60.7M
         r = rs >> 4;
2251
60.7M
         if (s == 0) {
2252
43.2M
            if (rs != 0xf0) break; // end block
2253
2.44M
            k += 16;
2254
17.5M
         } else {
2255
17.5M
            k += r;
2256
            // decode into unzigzag'd location
2257
17.5M
            zig = stbi__jpeg_dezigzag[k++];
2258
17.5M
            data[zig] = (short) (stbi__extend_receive(j,s) * dequant[zig]);
2259
17.5M
         }
2260
60.7M
      }
2261
88.4M
   } while (k < 64);
2262
45.8M
   return 1;
2263
45.8M
}
2264
2265
static int stbi__jpeg_decode_block_prog_dc(stbi__jpeg *j, short data[64], stbi__huffman *hdc, int b)
2266
37.2M
{
2267
37.2M
   int diff,dc;
2268
37.2M
   int t;
2269
37.2M
   if (j->spec_end != 0) return stbi__err("can't merge dc and ac", "Corrupt JPEG");
2270
2271
37.2M
   if (j->code_bits < 16) stbi__grow_buffer_unsafe(j);
2272
2273
37.2M
   if (j->succ_high == 0) {
2274
      // first scan for DC coefficient, must be first
2275
28.1M
      memset(data,0,64*sizeof(data[0])); // 0 all the ac values now
2276
28.1M
      t = stbi__jpeg_huff_decode(j, hdc);
2277
28.1M
      if (t < 0 || t > 15) return stbi__err("can't merge dc and ac", "Corrupt JPEG");
2278
28.1M
      diff = t ? stbi__extend_receive(j, t) : 0;
2279
2280
28.1M
      if (!stbi__addints_valid(j->img_comp[b].dc_pred, diff)) return stbi__err("bad delta", "Corrupt JPEG");
2281
28.1M
      dc = j->img_comp[b].dc_pred + diff;
2282
28.1M
      j->img_comp[b].dc_pred = dc;
2283
28.1M
      if (!stbi__mul2shorts_valid(dc, 1 << j->succ_low)) return stbi__err("can't merge dc and ac", "Corrupt JPEG");
2284
28.1M
      data[0] = (short) (dc * (1 << j->succ_low));
2285
28.1M
   } else {
2286
      // refinement scan for DC coefficient
2287
9.12M
      if (stbi__jpeg_get_bit(j))
2288
20.9k
         data[0] += (short) (1 << j->succ_low);
2289
9.12M
   }
2290
37.2M
   return 1;
2291
37.2M
}
2292
2293
// @OPTIMIZE: store non-zigzagged during the decode passes,
2294
// and only de-zigzag when dequantizing
2295
static int stbi__jpeg_decode_block_prog_ac(stbi__jpeg *j, short data[64], stbi__huffman *hac, stbi__int16 *fac)
2296
204M
{
2297
204M
   int k;
2298
204M
   if (j->spec_start == 0) return stbi__err("can't merge dc and ac", "Corrupt JPEG");
2299
2300
204M
   if (j->succ_high == 0) {
2301
190M
      int shift = j->succ_low;
2302
2303
190M
      if (j->eob_run) {
2304
84.5M
         --j->eob_run;
2305
84.5M
         return 1;
2306
84.5M
      }
2307
2308
106M
      k = j->spec_start;
2309
6.41G
      do {
2310
6.41G
         unsigned int zig;
2311
6.41G
         int c,r,s;
2312
6.41G
         if (j->code_bits < 16) stbi__grow_buffer_unsafe(j);
2313
6.41G
         c = (j->code_buffer >> (32 - FAST_BITS)) & ((1 << FAST_BITS)-1);
2314
6.41G
         r = fac[c];
2315
6.41G
         if (r) { // fast-AC path
2316
6.37G
            k += (r >> 4) & 15; // run
2317
6.37G
            s = r & 15; // combined length
2318
6.37G
            if (s > j->code_bits) return stbi__err("bad huffman code", "Combined length longer than code bits available");
2319
6.37G
            j->code_buffer <<= s;
2320
6.37G
            j->code_bits -= s;
2321
6.37G
            zig = stbi__jpeg_dezigzag[k++];
2322
6.37G
            data[zig] = (short) ((r >> 8) * (1 << shift));
2323
6.37G
         } else {
2324
40.3M
            int rs = stbi__jpeg_huff_decode(j, hac);
2325
40.3M
            if (rs < 0) return stbi__err("bad huffman code","Corrupt JPEG");
2326
40.3M
            s = rs & 15;
2327
40.3M
            r = rs >> 4;
2328
40.3M
            if (s == 0) {
2329
1.80M
               if (r < 15) {
2330
1.70M
                  j->eob_run = (1 << r);
2331
1.70M
                  if (r)
2332
165k
                     j->eob_run += stbi__jpeg_get_bits(j, r);
2333
1.70M
                  --j->eob_run;
2334
1.70M
                  break;
2335
1.70M
               }
2336
100k
               k += 16;
2337
38.5M
            } else {
2338
38.5M
               k += r;
2339
38.5M
               zig = stbi__jpeg_dezigzag[k++];
2340
38.5M
               data[zig] = (short) (stbi__extend_receive(j,s) * (1 << shift));
2341
38.5M
            }
2342
40.3M
         }
2343
6.41G
      } while (k <= j->spec_end);
2344
106M
   } else {
2345
      // refinement scan for these AC coefficients
2346
2347
14.2M
      short bit = (short) (1 << j->succ_low);
2348
2349
14.2M
      if (j->eob_run) {
2350
2.82M
         --j->eob_run;
2351
44.1M
         for (k = j->spec_start; k <= j->spec_end; ++k) {
2352
41.2M
            short *p = &data[stbi__jpeg_dezigzag[k]];
2353
41.2M
            if (*p != 0)
2354
23.2M
               if (stbi__jpeg_get_bit(j))
2355
3.70k
                  if ((*p & bit)==0) {
2356
1.89k
                     if (*p > 0)
2357
630
                        *p += bit;
2358
1.26k
                     else
2359
1.26k
                        *p -= bit;
2360
1.89k
                  }
2361
41.2M
         }
2362
11.4M
      } else {
2363
11.4M
         k = j->spec_start;
2364
18.3M
         do {
2365
18.3M
            int r,s;
2366
18.3M
            int rs = stbi__jpeg_huff_decode(j, hac); // @OPTIMIZE see if we can use the fast path here, advance-by-r is so slow, eh
2367
18.3M
            if (rs < 0) return stbi__err("bad huffman code","Corrupt JPEG");
2368
18.3M
            s = rs & 15;
2369
18.3M
            r = rs >> 4;
2370
18.3M
            if (s == 0) {
2371
5.54M
               if (r < 15) {
2372
5.27M
                  j->eob_run = (1 << r) - 1;
2373
5.27M
                  if (r)
2374
368k
                     j->eob_run += stbi__jpeg_get_bits(j, r);
2375
5.27M
                  r = 64; // force end of block
2376
5.27M
               } else {
2377
                  // r=15 s=0 should write 16 0s, so we just do
2378
                  // a run of 15 0s and then write s (which is 0),
2379
                  // so we don't have to do anything special here
2380
273k
               }
2381
12.7M
            } else {
2382
12.7M
               if (s != 1) return stbi__err("bad huffman code", "Corrupt JPEG");
2383
               // sign bit
2384
12.7M
               if (stbi__jpeg_get_bit(j))
2385
25.5k
                  s = bit;
2386
12.7M
               else
2387
12.7M
                  s = -bit;
2388
12.7M
            }
2389
2390
            // advance by r
2391
198M
            while (k <= j->spec_end) {
2392
187M
               short *p = &data[stbi__jpeg_dezigzag[k++]];
2393
187M
               if (*p != 0) {
2394
137M
                  if (stbi__jpeg_get_bit(j))
2395
15.0k
                     if ((*p & bit)==0) {
2396
12.6k
                        if (*p > 0)
2397
5.97k
                           *p += bit;
2398
6.67k
                        else
2399
6.67k
                           *p -= bit;
2400
12.6k
                     }
2401
137M
               } else {
2402
50.9M
                  if (r == 0) {
2403
7.32M
                     *p = (short) s;
2404
7.32M
                     break;
2405
7.32M
                  }
2406
43.5M
                  --r;
2407
43.5M
               }
2408
187M
            }
2409
18.3M
         } while (k <= j->spec_end);
2410
11.4M
      }
2411
14.2M
   }
2412
120M
   return 1;
2413
204M
}
2414
2415
// take a -128..127 value and stbi__clamp it and convert to 0..255
2416
stbi_inline static stbi_uc stbi__clamp(int x)
2417
0
{
2418
   // trick to use a single test to catch both cases
2419
0
   if ((unsigned int) x > 255) {
2420
0
      if (x < 0) return 0;
2421
0
      if (x > 255) return 255;
2422
0
   }
2423
0
   return (stbi_uc) x;
2424
0
}
2425
2426
0
#define stbi__f2f(x)  ((int) (((x) * 4096 + 0.5)))
2427
0
#define stbi__fsh(x)  ((x) * 4096)
2428
2429
// derived from jidctint -- DCT_ISLOW
2430
#define STBI__IDCT_1D(s0,s1,s2,s3,s4,s5,s6,s7) \
2431
0
   int t0,t1,t2,t3,p1,p2,p3,p4,p5,x0,x1,x2,x3; \
2432
0
   p2 = s2;                                    \
2433
0
   p3 = s6;                                    \
2434
0
   p1 = (p2+p3) * stbi__f2f(0.5411961f);       \
2435
0
   t2 = p1 + p3*stbi__f2f(-1.847759065f);      \
2436
0
   t3 = p1 + p2*stbi__f2f( 0.765366865f);      \
2437
0
   p2 = s0;                                    \
2438
0
   p3 = s4;                                    \
2439
0
   t0 = stbi__fsh(p2+p3);                      \
2440
0
   t1 = stbi__fsh(p2-p3);                      \
2441
0
   x0 = t0+t3;                                 \
2442
0
   x3 = t0-t3;                                 \
2443
0
   x1 = t1+t2;                                 \
2444
0
   x2 = t1-t2;                                 \
2445
0
   t0 = s7;                                    \
2446
0
   t1 = s5;                                    \
2447
0
   t2 = s3;                                    \
2448
0
   t3 = s1;                                    \
2449
0
   p3 = t0+t2;                                 \
2450
0
   p4 = t1+t3;                                 \
2451
0
   p1 = t0+t3;                                 \
2452
0
   p2 = t1+t2;                                 \
2453
0
   p5 = (p3+p4)*stbi__f2f( 1.175875602f);      \
2454
0
   t0 = t0*stbi__f2f( 0.298631336f);           \
2455
0
   t1 = t1*stbi__f2f( 2.053119869f);           \
2456
0
   t2 = t2*stbi__f2f( 3.072711026f);           \
2457
0
   t3 = t3*stbi__f2f( 1.501321110f);           \
2458
0
   p1 = p5 + p1*stbi__f2f(-0.899976223f);      \
2459
0
   p2 = p5 + p2*stbi__f2f(-2.562915447f);      \
2460
0
   p3 = p3*stbi__f2f(-1.961570560f);           \
2461
0
   p4 = p4*stbi__f2f(-0.390180644f);           \
2462
0
   t3 += p1+p4;                                \
2463
0
   t2 += p2+p3;                                \
2464
0
   t1 += p2+p4;                                \
2465
0
   t0 += p1+p3;
2466
2467
static void stbi__idct_block(stbi_uc *out, int out_stride, short data[64])
2468
0
{
2469
0
   int i,val[64],*v=val;
2470
0
   stbi_uc *o;
2471
0
   short *d = data;
2472
2473
   // columns
2474
0
   for (i=0; i < 8; ++i,++d, ++v) {
2475
      // if all zeroes, shortcut -- this avoids dequantizing 0s and IDCTing
2476
0
      if (d[ 8]==0 && d[16]==0 && d[24]==0 && d[32]==0
2477
0
           && d[40]==0 && d[48]==0 && d[56]==0) {
2478
         //    no shortcut                 0     seconds
2479
         //    (1|2|3|4|5|6|7)==0          0     seconds
2480
         //    all separate               -0.047 seconds
2481
         //    1 && 2|3 && 4|5 && 6|7:    -0.047 seconds
2482
0
         int dcterm = d[0]*4;
2483
0
         v[0] = v[8] = v[16] = v[24] = v[32] = v[40] = v[48] = v[56] = dcterm;
2484
0
      } else {
2485
0
         STBI__IDCT_1D(d[ 0],d[ 8],d[16],d[24],d[32],d[40],d[48],d[56])
2486
         // constants scaled things up by 1<<12; let's bring them back
2487
         // down, but keep 2 extra bits of precision
2488
0
         x0 += 512; x1 += 512; x2 += 512; x3 += 512;
2489
0
         v[ 0] = (x0+t3) >> 10;
2490
0
         v[56] = (x0-t3) >> 10;
2491
0
         v[ 8] = (x1+t2) >> 10;
2492
0
         v[48] = (x1-t2) >> 10;
2493
0
         v[16] = (x2+t1) >> 10;
2494
0
         v[40] = (x2-t1) >> 10;
2495
0
         v[24] = (x3+t0) >> 10;
2496
0
         v[32] = (x3-t0) >> 10;
2497
0
      }
2498
0
   }
2499
2500
0
   for (i=0, v=val, o=out; i < 8; ++i,v+=8,o+=out_stride) {
2501
      // no fast case since the first 1D IDCT spread components out
2502
0
      STBI__IDCT_1D(v[0],v[1],v[2],v[3],v[4],v[5],v[6],v[7])
2503
      // constants scaled things up by 1<<12, plus we had 1<<2 from first
2504
      // loop, plus horizontal and vertical each scale by sqrt(8) so together
2505
      // we've got an extra 1<<3, so 1<<17 total we need to remove.
2506
      // so we want to round that, which means adding 0.5 * 1<<17,
2507
      // aka 65536. Also, we'll end up with -128 to 127 that we want
2508
      // to encode as 0..255 by adding 128, so we'll add that before the shift
2509
0
      x0 += 65536 + (128<<17);
2510
0
      x1 += 65536 + (128<<17);
2511
0
      x2 += 65536 + (128<<17);
2512
0
      x3 += 65536 + (128<<17);
2513
      // tried computing the shifts into temps, or'ing the temps to see
2514
      // if any were out of range, but that was slower
2515
0
      o[0] = stbi__clamp((x0+t3) >> 17);
2516
0
      o[7] = stbi__clamp((x0-t3) >> 17);
2517
0
      o[1] = stbi__clamp((x1+t2) >> 17);
2518
0
      o[6] = stbi__clamp((x1-t2) >> 17);
2519
0
      o[2] = stbi__clamp((x2+t1) >> 17);
2520
0
      o[5] = stbi__clamp((x2-t1) >> 17);
2521
0
      o[3] = stbi__clamp((x3+t0) >> 17);
2522
0
      o[4] = stbi__clamp((x3-t0) >> 17);
2523
0
   }
2524
0
}
2525
2526
#ifdef STBI_SSE2
2527
// sse2 integer IDCT. not the fastest possible implementation but it
2528
// produces bit-identical results to the generic C version so it's
2529
// fully "transparent".
2530
static void stbi__idct_simd(stbi_uc *out, int out_stride, short data[64])
2531
47.4M
{
2532
   // This is constructed to match our regular (generic) integer IDCT exactly.
2533
47.4M
   __m128i row0, row1, row2, row3, row4, row5, row6, row7;
2534
47.4M
   __m128i tmp;
2535
2536
   // dot product constant: even elems=x, odd elems=y
2537
379M
   #define dct_const(x,y)  _mm_setr_epi16((x),(y),(x),(y),(x),(y),(x),(y))
2538
2539
   // out(0) = c0[even]*x + c0[odd]*y   (c0, x, y 16-bit, out 32-bit)
2540
   // out(1) = c1[even]*x + c1[odd]*y
2541
47.4M
   #define dct_rot(out0,out1, x,y,c0,c1) \
2542
379M
      __m128i c0##lo = _mm_unpacklo_epi16((x),(y)); \
2543
379M
      __m128i c0##hi = _mm_unpackhi_epi16((x),(y)); \
2544
379M
      __m128i out0##_l = _mm_madd_epi16(c0##lo, c0); \
2545
379M
      __m128i out0##_h = _mm_madd_epi16(c0##hi, c0); \
2546
379M
      __m128i out1##_l = _mm_madd_epi16(c0##lo, c1); \
2547
379M
      __m128i out1##_h = _mm_madd_epi16(c0##hi, c1)
2548
2549
   // out = in << 12  (in 16-bit, out 32-bit)
2550
47.4M
   #define dct_widen(out, in) \
2551
189M
      __m128i out##_l = _mm_srai_epi32(_mm_unpacklo_epi16(_mm_setzero_si128(), (in)), 4); \
2552
189M
      __m128i out##_h = _mm_srai_epi32(_mm_unpackhi_epi16(_mm_setzero_si128(), (in)), 4)
2553
2554
   // wide add
2555
47.4M
   #define dct_wadd(out, a, b) \
2556
948M
      __m128i out##_l = _mm_add_epi32(a##_l, b##_l); \
2557
948M
      __m128i out##_h = _mm_add_epi32(a##_h, b##_h)
2558
2559
   // wide sub
2560
47.4M
   #define dct_wsub(out, a, b) \
2561
569M
      __m128i out##_l = _mm_sub_epi32(a##_l, b##_l); \
2562
569M
      __m128i out##_h = _mm_sub_epi32(a##_h, b##_h)
2563
2564
   // butterfly a/b, add bias, then shift by "s" and pack
2565
47.4M
   #define dct_bfly32o(out0, out1, a,b,bias,s) \
2566
379M
      { \
2567
379M
         __m128i abiased_l = _mm_add_epi32(a##_l, bias); \
2568
379M
         __m128i abiased_h = _mm_add_epi32(a##_h, bias); \
2569
379M
         dct_wadd(sum, abiased, b); \
2570
379M
         dct_wsub(dif, abiased, b); \
2571
379M
         out0 = _mm_packs_epi32(_mm_srai_epi32(sum_l, s), _mm_srai_epi32(sum_h, s)); \
2572
379M
         out1 = _mm_packs_epi32(_mm_srai_epi32(dif_l, s), _mm_srai_epi32(dif_h, s)); \
2573
379M
      }
2574
2575
   // 8-bit interleave step (for transposes)
2576
47.4M
   #define dct_interleave8(a, b) \
2577
284M
      tmp = a; \
2578
284M
      a = _mm_unpacklo_epi8(a, b); \
2579
284M
      b = _mm_unpackhi_epi8(tmp, b)
2580
2581
   // 16-bit interleave step (for transposes)
2582
47.4M
   #define dct_interleave16(a, b) \
2583
569M
      tmp = a; \
2584
569M
      a = _mm_unpacklo_epi16(a, b); \
2585
569M
      b = _mm_unpackhi_epi16(tmp, b)
2586
2587
47.4M
   #define dct_pass(bias,shift) \
2588
94.8M
      { \
2589
         /* even part */ \
2590
94.8M
         dct_rot(t2e,t3e, row2,row6, rot0_0,rot0_1); \
2591
94.8M
         __m128i sum04 = _mm_add_epi16(row0, row4); \
2592
94.8M
         __m128i dif04 = _mm_sub_epi16(row0, row4); \
2593
94.8M
         dct_widen(t0e, sum04); \
2594
94.8M
         dct_widen(t1e, dif04); \
2595
94.8M
         dct_wadd(x0, t0e, t3e); \
2596
94.8M
         dct_wsub(x3, t0e, t3e); \
2597
94.8M
         dct_wadd(x1, t1e, t2e); \
2598
94.8M
         dct_wsub(x2, t1e, t2e); \
2599
         /* odd part */ \
2600
94.8M
         dct_rot(y0o,y2o, row7,row3, rot2_0,rot2_1); \
2601
94.8M
         dct_rot(y1o,y3o, row5,row1, rot3_0,rot3_1); \
2602
94.8M
         __m128i sum17 = _mm_add_epi16(row1, row7); \
2603
94.8M
         __m128i sum35 = _mm_add_epi16(row3, row5); \
2604
94.8M
         dct_rot(y4o,y5o, sum17,sum35, rot1_0,rot1_1); \
2605
94.8M
         dct_wadd(x4, y0o, y4o); \
2606
94.8M
         dct_wadd(x5, y1o, y5o); \
2607
94.8M
         dct_wadd(x6, y2o, y5o); \
2608
94.8M
         dct_wadd(x7, y3o, y4o); \
2609
94.8M
         dct_bfly32o(row0,row7, x0,x7,bias,shift); \
2610
94.8M
         dct_bfly32o(row1,row6, x1,x6,bias,shift); \
2611
94.8M
         dct_bfly32o(row2,row5, x2,x5,bias,shift); \
2612
94.8M
         dct_bfly32o(row3,row4, x3,x4,bias,shift); \
2613
94.8M
      }
2614
2615
47.4M
   __m128i rot0_0 = dct_const(stbi__f2f(0.5411961f), stbi__f2f(0.5411961f) + stbi__f2f(-1.847759065f));
2616
47.4M
   __m128i rot0_1 = dct_const(stbi__f2f(0.5411961f) + stbi__f2f( 0.765366865f), stbi__f2f(0.5411961f));
2617
47.4M
   __m128i rot1_0 = dct_const(stbi__f2f(1.175875602f) + stbi__f2f(-0.899976223f), stbi__f2f(1.175875602f));
2618
47.4M
   __m128i rot1_1 = dct_const(stbi__f2f(1.175875602f), stbi__f2f(1.175875602f) + stbi__f2f(-2.562915447f));
2619
47.4M
   __m128i rot2_0 = dct_const(stbi__f2f(-1.961570560f) + stbi__f2f( 0.298631336f), stbi__f2f(-1.961570560f));
2620
47.4M
   __m128i rot2_1 = dct_const(stbi__f2f(-1.961570560f), stbi__f2f(-1.961570560f) + stbi__f2f( 3.072711026f));
2621
47.4M
   __m128i rot3_0 = dct_const(stbi__f2f(-0.390180644f) + stbi__f2f( 2.053119869f), stbi__f2f(-0.390180644f));
2622
47.4M
   __m128i rot3_1 = dct_const(stbi__f2f(-0.390180644f), stbi__f2f(-0.390180644f) + stbi__f2f( 1.501321110f));
2623
2624
   // rounding biases in column/row passes, see stbi__idct_block for explanation.
2625
47.4M
   __m128i bias_0 = _mm_set1_epi32(512);
2626
47.4M
   __m128i bias_1 = _mm_set1_epi32(65536 + (128<<17));
2627
2628
   // load
2629
47.4M
   row0 = _mm_load_si128((const __m128i *) (data + 0*8));
2630
47.4M
   row1 = _mm_load_si128((const __m128i *) (data + 1*8));
2631
47.4M
   row2 = _mm_load_si128((const __m128i *) (data + 2*8));
2632
47.4M
   row3 = _mm_load_si128((const __m128i *) (data + 3*8));
2633
47.4M
   row4 = _mm_load_si128((const __m128i *) (data + 4*8));
2634
47.4M
   row5 = _mm_load_si128((const __m128i *) (data + 5*8));
2635
47.4M
   row6 = _mm_load_si128((const __m128i *) (data + 6*8));
2636
47.4M
   row7 = _mm_load_si128((const __m128i *) (data + 7*8));
2637
2638
   // column pass
2639
47.4M
   dct_pass(bias_0, 10);
2640
2641
47.4M
   {
2642
      // 16bit 8x8 transpose pass 1
2643
47.4M
      dct_interleave16(row0, row4);
2644
47.4M
      dct_interleave16(row1, row5);
2645
47.4M
      dct_interleave16(row2, row6);
2646
47.4M
      dct_interleave16(row3, row7);
2647
2648
      // transpose pass 2
2649
47.4M
      dct_interleave16(row0, row2);
2650
47.4M
      dct_interleave16(row1, row3);
2651
47.4M
      dct_interleave16(row4, row6);
2652
47.4M
      dct_interleave16(row5, row7);
2653
2654
      // transpose pass 3
2655
47.4M
      dct_interleave16(row0, row1);
2656
47.4M
      dct_interleave16(row2, row3);
2657
47.4M
      dct_interleave16(row4, row5);
2658
47.4M
      dct_interleave16(row6, row7);
2659
47.4M
   }
2660
2661
   // row pass
2662
47.4M
   dct_pass(bias_1, 17);
2663
2664
47.4M
   {
2665
      // pack
2666
47.4M
      __m128i p0 = _mm_packus_epi16(row0, row1); // a0a1a2a3...a7b0b1b2b3...b7
2667
47.4M
      __m128i p1 = _mm_packus_epi16(row2, row3);
2668
47.4M
      __m128i p2 = _mm_packus_epi16(row4, row5);
2669
47.4M
      __m128i p3 = _mm_packus_epi16(row6, row7);
2670
2671
      // 8bit 8x8 transpose pass 1
2672
47.4M
      dct_interleave8(p0, p2); // a0e0a1e1...
2673
47.4M
      dct_interleave8(p1, p3); // c0g0c1g1...
2674
2675
      // transpose pass 2
2676
47.4M
      dct_interleave8(p0, p1); // a0c0e0g0...
2677
47.4M
      dct_interleave8(p2, p3); // b0d0f0h0...
2678
2679
      // transpose pass 3
2680
47.4M
      dct_interleave8(p0, p2); // a0b0c0d0...
2681
47.4M
      dct_interleave8(p1, p3); // a4b4c4d4...
2682
2683
      // store
2684
47.4M
      _mm_storel_epi64((__m128i *) out, p0); out += out_stride;
2685
47.4M
      _mm_storel_epi64((__m128i *) out, _mm_shuffle_epi32(p0, 0x4e)); out += out_stride;
2686
47.4M
      _mm_storel_epi64((__m128i *) out, p2); out += out_stride;
2687
47.4M
      _mm_storel_epi64((__m128i *) out, _mm_shuffle_epi32(p2, 0x4e)); out += out_stride;
2688
47.4M
      _mm_storel_epi64((__m128i *) out, p1); out += out_stride;
2689
47.4M
      _mm_storel_epi64((__m128i *) out, _mm_shuffle_epi32(p1, 0x4e)); out += out_stride;
2690
47.4M
      _mm_storel_epi64((__m128i *) out, p3); out += out_stride;
2691
47.4M
      _mm_storel_epi64((__m128i *) out, _mm_shuffle_epi32(p3, 0x4e));
2692
47.4M
   }
2693
2694
47.4M
#undef dct_const
2695
47.4M
#undef dct_rot
2696
47.4M
#undef dct_widen
2697
47.4M
#undef dct_wadd
2698
47.4M
#undef dct_wsub
2699
47.4M
#undef dct_bfly32o
2700
47.4M
#undef dct_interleave8
2701
47.4M
#undef dct_interleave16
2702
47.4M
#undef dct_pass
2703
47.4M
}
2704
2705
#endif // STBI_SSE2
2706
2707
#ifdef STBI_NEON
2708
2709
// NEON integer IDCT. should produce bit-identical
2710
// results to the generic C version.
2711
static void stbi__idct_simd(stbi_uc *out, int out_stride, short data[64])
2712
{
2713
   int16x8_t row0, row1, row2, row3, row4, row5, row6, row7;
2714
2715
   int16x4_t rot0_0 = vdup_n_s16(stbi__f2f(0.5411961f));
2716
   int16x4_t rot0_1 = vdup_n_s16(stbi__f2f(-1.847759065f));
2717
   int16x4_t rot0_2 = vdup_n_s16(stbi__f2f( 0.765366865f));
2718
   int16x4_t rot1_0 = vdup_n_s16(stbi__f2f( 1.175875602f));
2719
   int16x4_t rot1_1 = vdup_n_s16(stbi__f2f(-0.899976223f));
2720
   int16x4_t rot1_2 = vdup_n_s16(stbi__f2f(-2.562915447f));
2721
   int16x4_t rot2_0 = vdup_n_s16(stbi__f2f(-1.961570560f));
2722
   int16x4_t rot2_1 = vdup_n_s16(stbi__f2f(-0.390180644f));
2723
   int16x4_t rot3_0 = vdup_n_s16(stbi__f2f( 0.298631336f));
2724
   int16x4_t rot3_1 = vdup_n_s16(stbi__f2f( 2.053119869f));
2725
   int16x4_t rot3_2 = vdup_n_s16(stbi__f2f( 3.072711026f));
2726
   int16x4_t rot3_3 = vdup_n_s16(stbi__f2f( 1.501321110f));
2727
2728
#define dct_long_mul(out, inq, coeff) \
2729
   int32x4_t out##_l = vmull_s16(vget_low_s16(inq), coeff); \
2730
   int32x4_t out##_h = vmull_s16(vget_high_s16(inq), coeff)
2731
2732
#define dct_long_mac(out, acc, inq, coeff) \
2733
   int32x4_t out##_l = vmlal_s16(acc##_l, vget_low_s16(inq), coeff); \
2734
   int32x4_t out##_h = vmlal_s16(acc##_h, vget_high_s16(inq), coeff)
2735
2736
#define dct_widen(out, inq) \
2737
   int32x4_t out##_l = vshll_n_s16(vget_low_s16(inq), 12); \
2738
   int32x4_t out##_h = vshll_n_s16(vget_high_s16(inq), 12)
2739
2740
// wide add
2741
#define dct_wadd(out, a, b) \
2742
   int32x4_t out##_l = vaddq_s32(a##_l, b##_l); \
2743
   int32x4_t out##_h = vaddq_s32(a##_h, b##_h)
2744
2745
// wide sub
2746
#define dct_wsub(out, a, b) \
2747
   int32x4_t out##_l = vsubq_s32(a##_l, b##_l); \
2748
   int32x4_t out##_h = vsubq_s32(a##_h, b##_h)
2749
2750
// butterfly a/b, then shift using "shiftop" by "s" and pack
2751
#define dct_bfly32o(out0,out1, a,b,shiftop,s) \
2752
   { \
2753
      dct_wadd(sum, a, b); \
2754
      dct_wsub(dif, a, b); \
2755
      out0 = vcombine_s16(shiftop(sum_l, s), shiftop(sum_h, s)); \
2756
      out1 = vcombine_s16(shiftop(dif_l, s), shiftop(dif_h, s)); \
2757
   }
2758
2759
#define dct_pass(shiftop, shift) \
2760
   { \
2761
      /* even part */ \
2762
      int16x8_t sum26 = vaddq_s16(row2, row6); \
2763
      dct_long_mul(p1e, sum26, rot0_0); \
2764
      dct_long_mac(t2e, p1e, row6, rot0_1); \
2765
      dct_long_mac(t3e, p1e, row2, rot0_2); \
2766
      int16x8_t sum04 = vaddq_s16(row0, row4); \
2767
      int16x8_t dif04 = vsubq_s16(row0, row4); \
2768
      dct_widen(t0e, sum04); \
2769
      dct_widen(t1e, dif04); \
2770
      dct_wadd(x0, t0e, t3e); \
2771
      dct_wsub(x3, t0e, t3e); \
2772
      dct_wadd(x1, t1e, t2e); \
2773
      dct_wsub(x2, t1e, t2e); \
2774
      /* odd part */ \
2775
      int16x8_t sum15 = vaddq_s16(row1, row5); \
2776
      int16x8_t sum17 = vaddq_s16(row1, row7); \
2777
      int16x8_t sum35 = vaddq_s16(row3, row5); \
2778
      int16x8_t sum37 = vaddq_s16(row3, row7); \
2779
      int16x8_t sumodd = vaddq_s16(sum17, sum35); \
2780
      dct_long_mul(p5o, sumodd, rot1_0); \
2781
      dct_long_mac(p1o, p5o, sum17, rot1_1); \
2782
      dct_long_mac(p2o, p5o, sum35, rot1_2); \
2783
      dct_long_mul(p3o, sum37, rot2_0); \
2784
      dct_long_mul(p4o, sum15, rot2_1); \
2785
      dct_wadd(sump13o, p1o, p3o); \
2786
      dct_wadd(sump24o, p2o, p4o); \
2787
      dct_wadd(sump23o, p2o, p3o); \
2788
      dct_wadd(sump14o, p1o, p4o); \
2789
      dct_long_mac(x4, sump13o, row7, rot3_0); \
2790
      dct_long_mac(x5, sump24o, row5, rot3_1); \
2791
      dct_long_mac(x6, sump23o, row3, rot3_2); \
2792
      dct_long_mac(x7, sump14o, row1, rot3_3); \
2793
      dct_bfly32o(row0,row7, x0,x7,shiftop,shift); \
2794
      dct_bfly32o(row1,row6, x1,x6,shiftop,shift); \
2795
      dct_bfly32o(row2,row5, x2,x5,shiftop,shift); \
2796
      dct_bfly32o(row3,row4, x3,x4,shiftop,shift); \
2797
   }
2798
2799
   // load
2800
   row0 = vld1q_s16(data + 0*8);
2801
   row1 = vld1q_s16(data + 1*8);
2802
   row2 = vld1q_s16(data + 2*8);
2803
   row3 = vld1q_s16(data + 3*8);
2804
   row4 = vld1q_s16(data + 4*8);
2805
   row5 = vld1q_s16(data + 5*8);
2806
   row6 = vld1q_s16(data + 6*8);
2807
   row7 = vld1q_s16(data + 7*8);
2808
2809
   // add DC bias
2810
   row0 = vaddq_s16(row0, vsetq_lane_s16(1024, vdupq_n_s16(0), 0));
2811
2812
   // column pass
2813
   dct_pass(vrshrn_n_s32, 10);
2814
2815
   // 16bit 8x8 transpose
2816
   {
2817
// these three map to a single VTRN.16, VTRN.32, and VSWP, respectively.
2818
// whether compilers actually get this is another story, sadly.
2819
#define dct_trn16(x, y) { int16x8x2_t t = vtrnq_s16(x, y); x = t.val[0]; y = t.val[1]; }
2820
#define dct_trn32(x, y) { int32x4x2_t t = vtrnq_s32(vreinterpretq_s32_s16(x), vreinterpretq_s32_s16(y)); x = vreinterpretq_s16_s32(t.val[0]); y = vreinterpretq_s16_s32(t.val[1]); }
2821
#define dct_trn64(x, y) { int16x8_t x0 = x; int16x8_t y0 = y; x = vcombine_s16(vget_low_s16(x0), vget_low_s16(y0)); y = vcombine_s16(vget_high_s16(x0), vget_high_s16(y0)); }
2822
2823
      // pass 1
2824
      dct_trn16(row0, row1); // a0b0a2b2a4b4a6b6
2825
      dct_trn16(row2, row3);
2826
      dct_trn16(row4, row5);
2827
      dct_trn16(row6, row7);
2828
2829
      // pass 2
2830
      dct_trn32(row0, row2); // a0b0c0d0a4b4c4d4
2831
      dct_trn32(row1, row3);
2832
      dct_trn32(row4, row6);
2833
      dct_trn32(row5, row7);
2834
2835
      // pass 3
2836
      dct_trn64(row0, row4); // a0b0c0d0e0f0g0h0
2837
      dct_trn64(row1, row5);
2838
      dct_trn64(row2, row6);
2839
      dct_trn64(row3, row7);
2840
2841
#undef dct_trn16
2842
#undef dct_trn32
2843
#undef dct_trn64
2844
   }
2845
2846
   // row pass
2847
   // vrshrn_n_s32 only supports shifts up to 16, we need
2848
   // 17. so do a non-rounding shift of 16 first then follow
2849
   // up with a rounding shift by 1.
2850
   dct_pass(vshrn_n_s32, 16);
2851
2852
   {
2853
      // pack and round
2854
      uint8x8_t p0 = vqrshrun_n_s16(row0, 1);
2855
      uint8x8_t p1 = vqrshrun_n_s16(row1, 1);
2856
      uint8x8_t p2 = vqrshrun_n_s16(row2, 1);
2857
      uint8x8_t p3 = vqrshrun_n_s16(row3, 1);
2858
      uint8x8_t p4 = vqrshrun_n_s16(row4, 1);
2859
      uint8x8_t p5 = vqrshrun_n_s16(row5, 1);
2860
      uint8x8_t p6 = vqrshrun_n_s16(row6, 1);
2861
      uint8x8_t p7 = vqrshrun_n_s16(row7, 1);
2862
2863
      // again, these can translate into one instruction, but often don't.
2864
#define dct_trn8_8(x, y) { uint8x8x2_t t = vtrn_u8(x, y); x = t.val[0]; y = t.val[1]; }
2865
#define dct_trn8_16(x, y) { uint16x4x2_t t = vtrn_u16(vreinterpret_u16_u8(x), vreinterpret_u16_u8(y)); x = vreinterpret_u8_u16(t.val[0]); y = vreinterpret_u8_u16(t.val[1]); }
2866
#define dct_trn8_32(x, y) { uint32x2x2_t t = vtrn_u32(vreinterpret_u32_u8(x), vreinterpret_u32_u8(y)); x = vreinterpret_u8_u32(t.val[0]); y = vreinterpret_u8_u32(t.val[1]); }
2867
2868
      // sadly can't use interleaved stores here since we only write
2869
      // 8 bytes to each scan line!
2870
2871
      // 8x8 8-bit transpose pass 1
2872
      dct_trn8_8(p0, p1);
2873
      dct_trn8_8(p2, p3);
2874
      dct_trn8_8(p4, p5);
2875
      dct_trn8_8(p6, p7);
2876
2877
      // pass 2
2878
      dct_trn8_16(p0, p2);
2879
      dct_trn8_16(p1, p3);
2880
      dct_trn8_16(p4, p6);
2881
      dct_trn8_16(p5, p7);
2882
2883
      // pass 3
2884
      dct_trn8_32(p0, p4);
2885
      dct_trn8_32(p1, p5);
2886
      dct_trn8_32(p2, p6);
2887
      dct_trn8_32(p3, p7);
2888
2889
      // store
2890
      vst1_u8(out, p0); out += out_stride;
2891
      vst1_u8(out, p1); out += out_stride;
2892
      vst1_u8(out, p2); out += out_stride;
2893
      vst1_u8(out, p3); out += out_stride;
2894
      vst1_u8(out, p4); out += out_stride;
2895
      vst1_u8(out, p5); out += out_stride;
2896
      vst1_u8(out, p6); out += out_stride;
2897
      vst1_u8(out, p7);
2898
2899
#undef dct_trn8_8
2900
#undef dct_trn8_16
2901
#undef dct_trn8_32
2902
   }
2903
2904
#undef dct_long_mul
2905
#undef dct_long_mac
2906
#undef dct_widen
2907
#undef dct_wadd
2908
#undef dct_wsub
2909
#undef dct_bfly32o
2910
#undef dct_pass
2911
}
2912
2913
#endif // STBI_NEON
2914
2915
146k
#define STBI__MARKER_none  0xff
2916
// if there's a pending marker from the entropy stream, return that
2917
// otherwise, fetch from the stream and get a marker. if there's no
2918
// marker, return 0xff, which is never a valid marker value
2919
static stbi_uc stbi__get_marker(stbi__jpeg *j)
2920
52.4k
{
2921
52.4k
   stbi_uc x;
2922
52.4k
   if (j->marker != STBI__MARKER_none) { x = j->marker; j->marker = STBI__MARKER_none; return x; }
2923
45.7k
   x = stbi__get8(j->s);
2924
45.7k
   if (x != 0xff) return STBI__MARKER_none;
2925
33.9k
   while (x == 0xff)
2926
17.4k
      x = stbi__get8(j->s); // consume repeated 0xff fill bytes
2927
16.5k
   return x;
2928
45.7k
}
2929
2930
// in each scan, we'll have scan_n components, and the order
2931
// of the components is specified by order[]
2932
13.6k
#define STBI__RESTART(x)     ((x) >= 0xd0 && (x) <= 0xd7)
2933
2934
// after a restart interval, stbi__jpeg_reset the entropy decoder and
2935
// the dc prediction
2936
static void stbi__jpeg_reset(stbi__jpeg *j)
2937
11.1k
{
2938
11.1k
   j->code_bits = 0;
2939
11.1k
   j->code_buffer = 0;
2940
11.1k
   j->nomore = 0;
2941
11.1k
   j->img_comp[0].dc_pred = j->img_comp[1].dc_pred = j->img_comp[2].dc_pred = j->img_comp[3].dc_pred = 0;
2942
11.1k
   j->marker = STBI__MARKER_none;
2943
11.1k
   j->todo = j->restart_interval ? j->restart_interval : 0x7fffffff;
2944
11.1k
   j->eob_run = 0;
2945
   // no more than 1<<31 MCUs if no restart_interal? that's plenty safe,
2946
   // since we don't even allow 1<<30 pixels
2947
11.1k
}
2948
2949
static int stbi__parse_entropy_coded_data(stbi__jpeg *z)
2950
7.37k
{
2951
7.37k
   stbi__jpeg_reset(z);
2952
7.37k
   if (!z->progressive) {
2953
2.37k
      if (z->scan_n == 1) {
2954
1.89k
         int i,j;
2955
1.89k
         STBI_SIMD_ALIGN(short, data[64]);
2956
1.89k
         int n = z->order[0];
2957
         // non-interleaved data, we just need to process one block at a time,
2958
         // in trivial scanline order
2959
         // number of blocks to do just depends on how many actual "pixels" this
2960
         // component has, independent of interleaved MCU blocking and such
2961
1.89k
         int w = (z->img_comp[n].x+7) >> 3;
2962
1.89k
         int h = (z->img_comp[n].y+7) >> 3;
2963
391k
         for (j=0; j < h; ++j) {
2964
30.8M
            for (i=0; i < w; ++i) {
2965
30.4M
               int ha = z->img_comp[n].ha;
2966
30.4M
               if (!stbi__jpeg_decode_block(z, data, z->huff_dc+z->img_comp[n].hd, z->huff_ac+ha, z->fast_ac[ha], n, z->dequant[z->img_comp[n].tq])) return 0;
2967
30.4M
               z->idct_block_kernel(z->img_comp[n].data+z->img_comp[n].w2*j*8+i*8, z->img_comp[n].w2, data);
2968
               // every data block is an MCU, so countdown the restart interval
2969
30.4M
               if (--z->todo <= 0) {
2970
2.63k
                  if (z->code_bits < 24) stbi__grow_buffer_unsafe(z);
2971
                  // if it's NOT a restart, then just bail, so we get corrupt data
2972
                  // rather than no data
2973
2.63k
                  if (!STBI__RESTART(z->marker)) return 1;
2974
1.77k
                  stbi__jpeg_reset(z);
2975
1.77k
               }
2976
30.4M
            }
2977
390k
         }
2978
993
         return 1;
2979
1.89k
      } else { // interleaved
2980
477
         int i,j,k,x,y;
2981
477
         STBI_SIMD_ALIGN(short, data[64]);
2982
26.5k
         for (j=0; j < z->img_mcu_y; ++j) {
2983
2.71M
            for (i=0; i < z->img_mcu_x; ++i) {
2984
               // scan an interleaved mcu... process scan_n components in order
2985
10.5M
               for (k=0; k < z->scan_n; ++k) {
2986
7.86M
                  int n = z->order[k];
2987
                  // scan out an mcu's worth of this component; that's just determined
2988
                  // by the basic H and V specified for the component
2989
17.6M
                  for (y=0; y < z->img_comp[n].v; ++y) {
2990
25.1M
                     for (x=0; x < z->img_comp[n].h; ++x) {
2991
15.4M
                        int x2 = (i*z->img_comp[n].h + x)*8;
2992
15.4M
                        int y2 = (j*z->img_comp[n].v + y)*8;
2993
15.4M
                        int ha = z->img_comp[n].ha;
2994
15.4M
                        if (!stbi__jpeg_decode_block(z, data, z->huff_dc+z->img_comp[n].hd, z->huff_ac+ha, z->fast_ac[ha], n, z->dequant[z->img_comp[n].tq])) return 0;
2995
15.4M
                        z->idct_block_kernel(z->img_comp[n].data+z->img_comp[n].w2*y2+x2, z->img_comp[n].w2, data);
2996
15.4M
                     }
2997
9.75M
                  }
2998
7.86M
               }
2999
               // after all interleaved components, that's an interleaved MCU,
3000
               // so now count down the restart interval
3001
2.68M
               if (--z->todo <= 0) {
3002
759
                  if (z->code_bits < 24) stbi__grow_buffer_unsafe(z);
3003
759
                  if (!STBI__RESTART(z->marker)) return 1;
3004
425
                  stbi__jpeg_reset(z);
3005
425
               }
3006
2.68M
            }
3007
26.4k
         }
3008
123
         return 1;
3009
477
      }
3010
4.99k
   } else {
3011
4.99k
      if (z->scan_n == 1) {
3012
4.24k
         int i,j;
3013
4.24k
         int n = z->order[0];
3014
         // non-interleaved data, we just need to process one block at a time,
3015
         // in trivial scanline order
3016
         // number of blocks to do just depends on how many actual "pixels" this
3017
         // component has, independent of interleaved MCU blocking and such
3018
4.24k
         int w = (z->img_comp[n].x+7) >> 3;
3019
4.24k
         int h = (z->img_comp[n].y+7) >> 3;
3020
662k
         for (j=0; j < h; ++j) {
3021
228M
            for (i=0; i < w; ++i) {
3022
228M
               short *data = z->img_comp[n].coeff + 64 * (i + j * z->img_comp[n].coeff_w);
3023
228M
               if (z->spec_start == 0) {
3024
23.3M
                  if (!stbi__jpeg_decode_block_prog_dc(z, data, &z->huff_dc[z->img_comp[n].hd], n))
3025
46
                     return 0;
3026
204M
               } else {
3027
204M
                  int ha = z->img_comp[n].ha;
3028
204M
                  if (!stbi__jpeg_decode_block_prog_ac(z, data, &z->huff_ac[ha], z->fast_ac[ha]))
3029
46
                     return 0;
3030
204M
               }
3031
               // every data block is an MCU, so countdown the restart interval
3032
228M
               if (--z->todo <= 0) {
3033
1.73k
                  if (z->code_bits < 24) stbi__grow_buffer_unsafe(z);
3034
1.73k
                  if (!STBI__RESTART(z->marker)) return 1;
3035
727
                  stbi__jpeg_reset(z);
3036
727
               }
3037
228M
            }
3038
659k
         }
3039
3.13k
         return 1;
3040
4.24k
      } else { // interleaved
3041
752
         int i,j,k,x,y;
3042
10.0k
         for (j=0; j < z->img_mcu_y; ++j) {
3043
1.67M
            for (i=0; i < z->img_mcu_x; ++i) {
3044
               // scan an interleaved mcu... process scan_n components in order
3045
6.60M
               for (k=0; k < z->scan_n; ++k) {
3046
4.93M
                  int n = z->order[k];
3047
                  // scan out an mcu's worth of this component; that's just determined
3048
                  // by the basic H and V specified for the component
3049
15.0M
                  for (y=0; y < z->img_comp[n].v; ++y) {
3050
24.0M
                     for (x=0; x < z->img_comp[n].h; ++x) {
3051
13.9M
                        int x2 = (i*z->img_comp[n].h + x);
3052
13.9M
                        int y2 = (j*z->img_comp[n].v + y);
3053
13.9M
                        short *data = z->img_comp[n].coeff + 64 * (x2 + y2 * z->img_comp[n].coeff_w);
3054
13.9M
                        if (!stbi__jpeg_decode_block_prog_dc(z, data, &z->huff_dc[z->img_comp[n].hd], n))
3055
12
                           return 0;
3056
13.9M
                     }
3057
10.1M
                  }
3058
4.93M
               }
3059
               // after all interleaved components, that's an interleaved MCU,
3060
               // so now count down the restart interval
3061
1.66M
               if (--z->todo <= 0) {
3062
1.33k
                  if (z->code_bits < 24) stbi__grow_buffer_unsafe(z);
3063
1.33k
                  if (!STBI__RESTART(z->marker)) return 1;
3064
813
                  stbi__jpeg_reset(z);
3065
813
               }
3066
1.66M
            }
3067
9.81k
         }
3068
216
         return 1;
3069
752
      }
3070
4.99k
   }
3071
7.37k
}
3072
3073
static void stbi__jpeg_dequantize(short *data, stbi__uint16 *dequant)
3074
1.57M
{
3075
1.57M
   int i;
3076
102M
   for (i=0; i < 64; ++i)
3077
100M
      data[i] *= dequant[i];
3078
1.57M
}
3079
3080
static void stbi__jpeg_finish(stbi__jpeg *z)
3081
35
{
3082
35
   if (z->progressive) {
3083
      // dequantize and idct the data
3084
35
      int i,j,n;
3085
89
      for (n=0; n < z->s->img_n; ++n) {
3086
54
         int w = (z->img_comp[n].x+7) >> 3;
3087
54
         int h = (z->img_comp[n].y+7) >> 3;
3088
55.0k
         for (j=0; j < h; ++j) {
3089
1.62M
            for (i=0; i < w; ++i) {
3090
1.57M
               short *data = z->img_comp[n].coeff + 64 * (i + j * z->img_comp[n].coeff_w);
3091
1.57M
               stbi__jpeg_dequantize(data, z->dequant[z->img_comp[n].tq]);
3092
1.57M
               z->idct_block_kernel(z->img_comp[n].data+z->img_comp[n].w2*j*8+i*8, z->img_comp[n].w2, data);
3093
1.57M
            }
3094
54.9k
         }
3095
54
      }
3096
35
   }
3097
35
}
3098
3099
static int stbi__process_marker(stbi__jpeg *z, int m)
3100
8.89k
{
3101
8.89k
   int L;
3102
8.89k
   switch (m) {
3103
791
      case STBI__MARKER_none: // no marker found
3104
791
         return stbi__err("expected marker","Corrupt JPEG");
3105
3106
1.17k
      case 0xDD: // DRI - specify restart interval
3107
1.17k
         if (stbi__get16be(z->s) != 4) return stbi__err("bad DRI len","Corrupt JPEG");
3108
1.15k
         z->restart_interval = stbi__get16be(z->s);
3109
1.15k
         return 1;
3110
3111
960
      case 0xDB: // DQT - define quantization table
3112
960
         L = stbi__get16be(z->s)-2;
3113
10.1k
         while (L > 0) {
3114
9.17k
            int q = stbi__get8(z->s);
3115
9.17k
            int p = q >> 4, sixteen = (p != 0);
3116
9.17k
            int t = q & 15,i;
3117
9.17k
            if (p != 0 && p != 1) return stbi__err("bad DQT type","Corrupt JPEG");
3118
9.17k
            if (t > 3) return stbi__err("bad DQT table","Corrupt JPEG");
3119
3120
595k
            for (i=0; i < 64; ++i)
3121
586k
               z->dequant[t][stbi__jpeg_dezigzag[i]] = (stbi__uint16)(sixteen ? stbi__get16be(z->s) : stbi__get8(z->s));
3122
9.16k
            L -= (sixteen ? 129 : 65);
3123
9.16k
         }
3124
952
         return L==0;
3125
3126
3.81k
      case 0xC4: // DHT - define huffman table
3127
3.81k
         L = stbi__get16be(z->s)-2;
3128
88.8k
         while (L > 0) {
3129
85.1k
            stbi_uc *v;
3130
85.1k
            int sizes[16],i,n=0;
3131
85.1k
            int q = stbi__get8(z->s);
3132
85.1k
            int tc = q >> 4;
3133
85.1k
            int th = q & 15;
3134
85.1k
            if (tc > 1 || th > 3) return stbi__err("bad DHT header","Corrupt JPEG");
3135
1.44M
            for (i=0; i < 16; ++i) {
3136
1.36M
               sizes[i] = stbi__get8(z->s);
3137
1.36M
               n += sizes[i];
3138
1.36M
            }
3139
85.1k
            if(n > 256) return stbi__err("bad DHT header","Corrupt JPEG"); // Loop over i < n would write past end of values!
3140
85.1k
            L -= 17;
3141
85.1k
            if (tc == 0) {
3142
82.3k
               if (!stbi__build_huffman(z->huff_dc+th, sizes)) return 0;
3143
82.3k
               v = z->huff_dc[th].values;
3144
82.3k
            } else {
3145
2.70k
               if (!stbi__build_huffman(z->huff_ac+th, sizes)) return 0;
3146
2.69k
               v = z->huff_ac[th].values;
3147
2.69k
            }
3148
115k
            for (i=0; i < n; ++i)
3149
30.5k
               v[i] = stbi__get8(z->s);
3150
85.0k
            if (tc != 0)
3151
2.69k
               stbi__build_fast_ac(z->fast_ac[th], z->huff_ac + th);
3152
85.0k
            L -= n;
3153
85.0k
         }
3154
3.75k
         return L==0;
3155
8.89k
   }
3156
3157
   // check for comment block or APP blocks
3158
2.15k
   if ((m >= 0xE0 && m <= 0xEF) || m == 0xFE) {
3159
2.01k
      L = stbi__get16be(z->s);
3160
2.01k
      if (L < 2) {
3161
15
         if (m == 0xFE)
3162
6
            return stbi__err("bad COM len","Corrupt JPEG");
3163
9
         else
3164
9
            return stbi__err("bad APP len","Corrupt JPEG");
3165
15
      }
3166
1.99k
      L -= 2;
3167
3168
1.99k
      if (m == 0xE0 && L >= 5) { // JFIF APP0 segment
3169
581
         static const unsigned char tag[5] = {'J','F','I','F','\0'};
3170
581
         int ok = 1;
3171
581
         int i;
3172
3.48k
         for (i=0; i < 5; ++i)
3173
2.90k
            if (stbi__get8(z->s) != tag[i])
3174
1.30k
               ok = 0;
3175
581
         L -= 5;
3176
581
         if (ok)
3177
250
            z->jfif = 1;
3178
1.41k
      } else if (m == 0xEE && L >= 12) { // Adobe APP14 segment
3179
714
         static const unsigned char tag[6] = {'A','d','o','b','e','\0'};
3180
714
         int ok = 1;
3181
714
         int i;
3182
4.99k
         for (i=0; i < 6; ++i)
3183
4.28k
            if (stbi__get8(z->s) != tag[i])
3184
1.48k
               ok = 0;
3185
714
         L -= 6;
3186
714
         if (ok) {
3187
437
            stbi__get8(z->s); // version
3188
437
            stbi__get16be(z->s); // flags0
3189
437
            stbi__get16be(z->s); // flags1
3190
437
            z->app14_color_transform = stbi__get8(z->s); // color transform
3191
437
            L -= 6;
3192
437
         }
3193
714
      }
3194
3195
1.99k
      stbi__skip(z->s, L);
3196
1.99k
      return 1;
3197
2.01k
   }
3198
3199
148
   return stbi__err("unknown marker","Corrupt JPEG");
3200
2.15k
}
3201
3202
// after we see SOS
3203
static int stbi__process_scan_header(stbi__jpeg *z)
3204
7.50k
{
3205
7.50k
   int i;
3206
7.50k
   int Ls = stbi__get16be(z->s);
3207
7.50k
   z->scan_n = stbi__get8(z->s);
3208
7.50k
   if (z->scan_n < 1 || z->scan_n > 4 || z->scan_n > (int) z->s->img_n) return stbi__err("bad SOS component count","Corrupt JPEG");
3209
7.46k
   if (Ls != 6+2*z->scan_n) return stbi__err("bad SOS len","Corrupt JPEG");
3210
17.3k
   for (i=0; i < z->scan_n; ++i) {
3211
9.89k
      int id = stbi__get8(z->s), which;
3212
9.89k
      int q = stbi__get8(z->s);
3213
17.9k
      for (which = 0; which < z->s->img_n; ++which)
3214
17.9k
         if (z->img_comp[which].id == id)
3215
9.87k
            break;
3216
9.89k
      if (which == z->s->img_n) return 0; // no match
3217
9.87k
      z->img_comp[which].hd = q >> 4;   if (z->img_comp[which].hd > 3) return stbi__err("bad DC huff","Corrupt JPEG");
3218
9.86k
      z->img_comp[which].ha = q & 15;   if (z->img_comp[which].ha > 3) return stbi__err("bad AC huff","Corrupt JPEG");
3219
9.86k
      z->order[i] = which;
3220
9.86k
   }
3221
3222
7.41k
   {
3223
7.41k
      int aa;
3224
7.41k
      z->spec_start = stbi__get8(z->s);
3225
7.41k
      z->spec_end   = stbi__get8(z->s); // should be 63, but might be 0
3226
7.41k
      aa = stbi__get8(z->s);
3227
7.41k
      z->succ_high = (aa >> 4);
3228
7.41k
      z->succ_low  = (aa & 15);
3229
7.41k
      if (z->progressive) {
3230
5.01k
         if (z->spec_start > 63 || z->spec_end > 63  || z->spec_start > z->spec_end || z->succ_high > 13 || z->succ_low > 13)
3231
22
            return stbi__err("bad SOS", "Corrupt JPEG");
3232
5.01k
      } else {
3233
2.39k
         if (z->spec_start != 0) return stbi__err("bad SOS","Corrupt JPEG");
3234
2.38k
         if (z->succ_high != 0 || z->succ_low != 0) return stbi__err("bad SOS","Corrupt JPEG");
3235
2.37k
         z->spec_end = 63;
3236
2.37k
      }
3237
7.41k
   }
3238
3239
7.37k
   return 1;
3240
7.41k
}
3241
3242
static int stbi__free_jpeg_components(stbi__jpeg *z, int ncomp, int why)
3243
1.31k
{
3244
1.31k
   int i;
3245
3.65k
   for (i=0; i < ncomp; ++i) {
3246
2.34k
      if (z->img_comp[i].raw_data) {
3247
2.31k
         STBI_FREE(z->img_comp[i].raw_data);
3248
2.31k
         z->img_comp[i].raw_data = NULL;
3249
2.31k
         z->img_comp[i].data = NULL;
3250
2.31k
      }
3251
2.34k
      if (z->img_comp[i].raw_coeff) {
3252
1.28k
         STBI_FREE(z->img_comp[i].raw_coeff);
3253
1.28k
         z->img_comp[i].raw_coeff = 0;
3254
1.28k
         z->img_comp[i].coeff = 0;
3255
1.28k
      }
3256
2.34k
      if (z->img_comp[i].linebuf) {
3257
1.76k
         STBI_FREE(z->img_comp[i].linebuf);
3258
1.76k
         z->img_comp[i].linebuf = NULL;
3259
1.76k
      }
3260
2.34k
   }
3261
1.31k
   return why;
3262
1.31k
}
3263
3264
static int stbi__process_frame_header(stbi__jpeg *z, int scan)
3265
2.71k
{
3266
2.71k
   stbi__context *s = z->s;
3267
2.71k
   int Lf,p,i,q, h_max=1,v_max=1,c;
3268
2.71k
   Lf = stbi__get16be(s);         if (Lf < 11) return stbi__err("bad SOF len","Corrupt JPEG"); // JPEG
3269
2.71k
   p  = stbi__get8(s);            if (p != 8) return stbi__err("only 8-bit","JPEG format not supported: 8-bit only"); // JPEG baseline
3270
2.69k
   s->img_y = stbi__get16be(s);   if (s->img_y == 0) return stbi__err("no header height", "JPEG format not supported: delayed height"); // Legal, but we don't handle it--but neither does IJG
3271
2.69k
   s->img_x = stbi__get16be(s);   if (s->img_x == 0) return stbi__err("0 width","Corrupt JPEG"); // JPEG requires
3272
2.68k
   if (s->img_y > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
3273
2.68k
   if (s->img_x > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
3274
2.68k
   c = stbi__get8(s);
3275
2.68k
   if (c != 3 && c != 1 && c != 4) return stbi__err("bad component count","Corrupt JPEG");
3276
2.67k
   s->img_n = c;
3277
7.46k
   for (i=0; i < c; ++i) {
3278
4.79k
      z->img_comp[i].data = NULL;
3279
4.79k
      z->img_comp[i].linebuf = NULL;
3280
4.79k
   }
3281
3282
2.67k
   if (Lf != 8+3*s->img_n) return stbi__err("bad SOF len","Corrupt JPEG");
3283
3284
2.66k
   z->rgb = 0;
3285
7.37k
   for (i=0; i < s->img_n; ++i) {
3286
4.74k
      static const unsigned char rgb[3] = { 'R', 'G', 'B' };
3287
4.74k
      z->img_comp[i].id = stbi__get8(s);
3288
4.74k
      if (s->img_n == 3 && z->img_comp[i].id == rgb[i])
3289
200
         ++z->rgb;
3290
4.74k
      q = stbi__get8(s);
3291
4.74k
      z->img_comp[i].h = (q >> 4);  if (!z->img_comp[i].h || z->img_comp[i].h > 4) return stbi__err("bad H","Corrupt JPEG");
3292
4.72k
      z->img_comp[i].v = q & 15;    if (!z->img_comp[i].v || z->img_comp[i].v > 4) return stbi__err("bad V","Corrupt JPEG");
3293
4.71k
      z->img_comp[i].tq = stbi__get8(s);  if (z->img_comp[i].tq > 3) return stbi__err("bad TQ","Corrupt JPEG");
3294
4.71k
   }
3295
3296
2.62k
   if (scan != STBI__SCAN_load) return 1;
3297
3298
1.31k
   if (!stbi__mad3sizes_valid(s->img_x, s->img_y, s->img_n, 0)) return stbi__err("too large", "Image too large to decode");
3299
3300
3.65k
   for (i=0; i < s->img_n; ++i) {
3301
2.34k
      if (z->img_comp[i].h > h_max) h_max = z->img_comp[i].h;
3302
2.34k
      if (z->img_comp[i].v > v_max) v_max = z->img_comp[i].v;
3303
2.34k
   }
3304
3305
   // check that plane subsampling factors are integer ratios; our resamplers can't deal with fractional ratios
3306
   // and I've never seen a non-corrupted JPEG file actually use them
3307
3.63k
   for (i=0; i < s->img_n; ++i) {
3308
2.32k
      if (h_max % z->img_comp[i].h != 0) return stbi__err("bad H","Corrupt JPEG");
3309
2.32k
      if (v_max % z->img_comp[i].v != 0) return stbi__err("bad V","Corrupt JPEG");
3310
2.32k
   }
3311
3312
   // compute interleaved mcu info
3313
1.30k
   z->img_h_max = h_max;
3314
1.30k
   z->img_v_max = v_max;
3315
1.30k
   z->img_mcu_w = h_max * 8;
3316
1.30k
   z->img_mcu_h = v_max * 8;
3317
   // these sizes can't be more than 17 bits
3318
1.30k
   z->img_mcu_x = (s->img_x + z->img_mcu_w-1) / z->img_mcu_w;
3319
1.30k
   z->img_mcu_y = (s->img_y + z->img_mcu_h-1) / z->img_mcu_h;
3320
3321
3.61k
   for (i=0; i < s->img_n; ++i) {
3322
      // number of effective pixels (e.g. for non-interleaved MCU)
3323
2.31k
      z->img_comp[i].x = (s->img_x * z->img_comp[i].h + h_max-1) / h_max;
3324
2.31k
      z->img_comp[i].y = (s->img_y * z->img_comp[i].v + v_max-1) / v_max;
3325
      // to simplify generation, we'll allocate enough memory to decode
3326
      // the bogus oversized data from using interleaved MCUs and their
3327
      // big blocks (e.g. a 16x16 iMCU on an image of width 33); we won't
3328
      // discard the extra data until colorspace conversion
3329
      //
3330
      // img_mcu_x, img_mcu_y: <=17 bits; comp[i].h and .v are <=4 (checked earlier)
3331
      // so these muls can't overflow with 32-bit ints (which we require)
3332
2.31k
      z->img_comp[i].w2 = z->img_mcu_x * z->img_comp[i].h * 8;
3333
2.31k
      z->img_comp[i].h2 = z->img_mcu_y * z->img_comp[i].v * 8;
3334
2.31k
      z->img_comp[i].coeff = 0;
3335
2.31k
      z->img_comp[i].raw_coeff = 0;
3336
2.31k
      z->img_comp[i].linebuf = NULL;
3337
2.31k
      z->img_comp[i].raw_data = stbi__malloc_mad2(z->img_comp[i].w2, z->img_comp[i].h2, 15);
3338
2.31k
      if (z->img_comp[i].raw_data == NULL)
3339
0
         return stbi__free_jpeg_components(z, i+1, stbi__err("outofmem", "Out of memory"));
3340
      // align blocks for idct using mmx/sse
3341
2.31k
      z->img_comp[i].data = (stbi_uc*) (((size_t) z->img_comp[i].raw_data + 15) & ~15);
3342
2.31k
      if (z->progressive) {
3343
         // w2, h2 are multiples of 8 (see above)
3344
1.28k
         z->img_comp[i].coeff_w = z->img_comp[i].w2 / 8;
3345
1.28k
         z->img_comp[i].coeff_h = z->img_comp[i].h2 / 8;
3346
1.28k
         z->img_comp[i].raw_coeff = stbi__malloc_mad3(z->img_comp[i].w2, z->img_comp[i].h2, sizeof(short), 15);
3347
1.28k
         if (z->img_comp[i].raw_coeff == NULL)
3348
0
            return stbi__free_jpeg_components(z, i+1, stbi__err("outofmem", "Out of memory"));
3349
1.28k
         z->img_comp[i].coeff = (short*) (((size_t) z->img_comp[i].raw_coeff + 15) & ~15);
3350
1.28k
      }
3351
2.31k
   }
3352
3353
1.30k
   return 1;
3354
1.30k
}
3355
3356
// use comparisons since in some cases we handle more than one case (e.g. SOF)
3357
3.29k
#define stbi__DNL(x)         ((x) == 0xdc)
3358
9.88k
#define stbi__SOI(x)         ((x) == 0xd8)
3359
10.8k
#define stbi__EOI(x)         ((x) == 0xd9)
3360
8.41k
#define stbi__SOF(x)         ((x) == 0xc0 || (x) == 0xc1 || (x) == 0xc2)
3361
10.7k
#define stbi__SOS(x)         ((x) == 0xda)
3362
3363
2.71k
#define stbi__SOF_progressive(x)   ((x) == 0xc2)
3364
3365
static int stbi__decode_jpeg_header(stbi__jpeg *z, int scan)
3366
9.88k
{
3367
9.88k
   int m;
3368
9.88k
   z->jfif = 0;
3369
9.88k
   z->app14_color_transform = -1; // valid values are 0,1,2
3370
9.88k
   z->marker = STBI__MARKER_none; // initialize cached marker to empty
3371
9.88k
   m = stbi__get_marker(z);
3372
9.88k
   if (!stbi__SOI(m)) return stbi__err("no SOI","Corrupt JPEG");
3373
4.38k
   if (scan == STBI__SCAN_type) return 1;
3374
3.07k
   m = stbi__get_marker(z);
3375
8.41k
   while (!stbi__SOF(m)) {
3376
5.69k
      if (!stbi__process_marker(z,m)) return 0;
3377
5.46k
      m = stbi__get_marker(z);
3378
28.3k
      while (m == STBI__MARKER_none) {
3379
         // some files have extra padding after their blocks, so ok, we'll scan
3380
22.9k
         if (stbi__at_eof(z->s)) return stbi__err("no SOF", "Corrupt JPEG");
3381
22.8k
         m = stbi__get_marker(z);
3382
22.8k
      }
3383
5.46k
   }
3384
2.71k
   z->progressive = stbi__SOF_progressive(m);
3385
2.71k
   if (!stbi__process_frame_header(z, scan)) return 0;
3386
2.61k
   return 1;
3387
2.71k
}
3388
3389
static stbi_uc stbi__skip_jpeg_junk_at_end(stbi__jpeg *j)
3390
1.80k
{
3391
   // some JPEGs have junk at end, skip over it but if we find what looks
3392
   // like a valid marker, resume there
3393
8.89k
   while (!stbi__at_eof(j->s)) {
3394
8.37k
      stbi_uc x = stbi__get8(j->s);
3395
9.15k
      while (x == 0xff) { // might be a marker
3396
2.06k
         if (stbi__at_eof(j->s)) return STBI__MARKER_none;
3397
2.04k
         x = stbi__get8(j->s);
3398
2.04k
         if (x != 0x00 && x != 0xff) {
3399
            // not a stuffed zero or lead-in to another marker, looks
3400
            // like an actual marker, return it
3401
1.26k
            return x;
3402
1.26k
         }
3403
         // stuffed zero has x=0 now which ends the loop, meaning we go
3404
         // back to regular scan loop.
3405
         // repeated 0xff keeps trying to read the next byte of the marker.
3406
2.04k
      }
3407
8.37k
   }
3408
522
   return STBI__MARKER_none;
3409
1.80k
}
3410
3411
// decode image to YCbCr format
3412
static int stbi__decode_jpeg_image(stbi__jpeg *j)
3413
1.31k
{
3414
1.31k
   int m;
3415
6.56k
   for (m = 0; m < 4; m++) {
3416
5.24k
      j->img_comp[m].raw_data = NULL;
3417
5.24k
      j->img_comp[m].raw_coeff = NULL;
3418
5.24k
   }
3419
1.31k
   j->restart_interval = 0;
3420
1.31k
   if (!stbi__decode_jpeg_header(j, STBI__SCAN_load)) return 0;
3421
1.30k
   m = stbi__get_marker(j);
3422
10.8k
   while (!stbi__EOI(m)) {
3423
10.7k
      if (stbi__SOS(m)) {
3424
7.50k
         if (!stbi__process_scan_header(j)) return 0;
3425
7.37k
         if (!stbi__parse_entropy_coded_data(j)) return 0;
3426
7.20k
         if (j->marker == STBI__MARKER_none ) {
3427
1.80k
         j->marker = stbi__skip_jpeg_junk_at_end(j);
3428
            // if we reach eof without hitting a marker, stbi__get_marker() below will fail and we'll eventually return 0
3429
1.80k
         }
3430
7.20k
         m = stbi__get_marker(j);
3431
7.20k
         if (STBI__RESTART(m))
3432
324
            m = stbi__get_marker(j);
3433
7.20k
      } else if (stbi__DNL(m)) {
3434
93
         int Ld = stbi__get16be(j->s);
3435
93
         stbi__uint32 NL = stbi__get16be(j->s);
3436
93
         if (Ld != 4) return stbi__err("bad DNL len", "Corrupt JPEG");
3437
83
         if (NL != j->s->img_y) return stbi__err("bad DNL height", "Corrupt JPEG");
3438
67
         m = stbi__get_marker(j);
3439
3.20k
      } else {
3440
3.20k
         if (!stbi__process_marker(j, m)) return 1;
3441
2.25k
         m = stbi__get_marker(j);
3442
2.25k
      }
3443
10.7k
   }
3444
36
   if (j->progressive)
3445
35
      stbi__jpeg_finish(j);
3446
36
   return 1;
3447
1.30k
}
3448
3449
// static jfif-centered resampling (across block boundaries)
3450
3451
typedef stbi_uc *(*resample_row_func)(stbi_uc *out, stbi_uc *in0, stbi_uc *in1,
3452
                                    int w, int hs);
3453
3454
584M
#define stbi__div4(x) ((stbi_uc) ((x) >> 2))
3455
3456
static stbi_uc *resample_row_1(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3457
7.98M
{
3458
7.98M
   STBI_NOTUSED(out);
3459
7.98M
   STBI_NOTUSED(in_far);
3460
7.98M
   STBI_NOTUSED(w);
3461
7.98M
   STBI_NOTUSED(hs);
3462
7.98M
   return in_near;
3463
7.98M
}
3464
3465
static stbi_uc* stbi__resample_row_v_2(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3466
940k
{
3467
   // need to generate two samples vertically for every one in input
3468
940k
   int i;
3469
940k
   STBI_NOTUSED(hs);
3470
350M
   for (i=0; i < w; ++i)
3471
350M
      out[i] = stbi__div4(3*in_near[i] + in_far[i] + 2);
3472
940k
   return out;
3473
940k
}
3474
3475
static stbi_uc*  stbi__resample_row_h_2(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3476
982k
{
3477
   // need to generate two samples horizontally for every one in input
3478
982k
   int i;
3479
982k
   stbi_uc *input = in_near;
3480
3481
982k
   if (w == 1) {
3482
      // if only one sample, can't do any interpolation
3483
256k
      out[0] = out[1] = input[0];
3484
256k
      return out;
3485
256k
   }
3486
3487
726k
   out[0] = input[0];
3488
726k
   out[1] = stbi__div4(input[0]*3 + input[1] + 2);
3489
116M
   for (i=1; i < w-1; ++i) {
3490
115M
      int n = 3*input[i]+2;
3491
115M
      out[i*2+0] = stbi__div4(n+input[i-1]);
3492
115M
      out[i*2+1] = stbi__div4(n+input[i+1]);
3493
115M
   }
3494
726k
   out[i*2+0] = stbi__div4(input[w-2]*3 + input[w-1] + 2);
3495
726k
   out[i*2+1] = input[w-1];
3496
3497
726k
   STBI_NOTUSED(in_far);
3498
726k
   STBI_NOTUSED(hs);
3499
3500
726k
   return out;
3501
982k
}
3502
3503
5.53M
#define stbi__div16(x) ((stbi_uc) ((x) >> 4))
3504
3505
static stbi_uc *stbi__resample_row_hv_2(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3506
0
{
3507
   // need to generate 2x2 samples for every one in input
3508
0
   int i,t0,t1;
3509
0
   if (w == 1) {
3510
0
      out[0] = out[1] = stbi__div4(3*in_near[0] + in_far[0] + 2);
3511
0
      return out;
3512
0
   }
3513
3514
0
   t1 = 3*in_near[0] + in_far[0];
3515
0
   out[0] = stbi__div4(t1+2);
3516
0
   for (i=1; i < w; ++i) {
3517
0
      t0 = t1;
3518
0
      t1 = 3*in_near[i]+in_far[i];
3519
0
      out[i*2-1] = stbi__div16(3*t0 + t1 + 8);
3520
0
      out[i*2  ] = stbi__div16(3*t1 + t0 + 8);
3521
0
   }
3522
0
   out[w*2-1] = stbi__div4(t1+2);
3523
3524
0
   STBI_NOTUSED(hs);
3525
3526
0
   return out;
3527
0
}
3528
3529
#if defined(STBI_SSE2) || defined(STBI_NEON)
3530
static stbi_uc *stbi__resample_row_hv_2_simd(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3531
1.05M
{
3532
   // need to generate 2x2 samples for every one in input
3533
1.05M
   int i=0,t0,t1;
3534
3535
1.05M
   if (w == 1) {
3536
165k
      out[0] = out[1] = stbi__div4(3*in_near[0] + in_far[0] + 2);
3537
165k
      return out;
3538
165k
   }
3539
3540
885k
   t1 = 3*in_near[0] + in_far[0];
3541
   // process groups of 8 pixels for as long as we can.
3542
   // note we can't handle the last pixel in a row in this loop
3543
   // because we need to handle the filter boundary conditions.
3544
55.3M
   for (; i < ((w-1) & ~7); i += 8) {
3545
54.4M
#if defined(STBI_SSE2)
3546
      // load and perform the vertical filtering pass
3547
      // this uses 3*x + y = 4*x + (y - x)
3548
54.4M
      __m128i zero  = _mm_setzero_si128();
3549
54.4M
      __m128i farb  = _mm_loadl_epi64((__m128i *) (in_far + i));
3550
54.4M
      __m128i nearb = _mm_loadl_epi64((__m128i *) (in_near + i));
3551
54.4M
      __m128i farw  = _mm_unpacklo_epi8(farb, zero);
3552
54.4M
      __m128i nearw = _mm_unpacklo_epi8(nearb, zero);
3553
54.4M
      __m128i diff  = _mm_sub_epi16(farw, nearw);
3554
54.4M
      __m128i nears = _mm_slli_epi16(nearw, 2);
3555
54.4M
      __m128i curr  = _mm_add_epi16(nears, diff); // current row
3556
3557
      // horizontal filter works the same based on shifted vers of current
3558
      // row. "prev" is current row shifted right by 1 pixel; we need to
3559
      // insert the previous pixel value (from t1).
3560
      // "next" is current row shifted left by 1 pixel, with first pixel
3561
      // of next block of 8 pixels added in.
3562
54.4M
      __m128i prv0 = _mm_slli_si128(curr, 2);
3563
54.4M
      __m128i nxt0 = _mm_srli_si128(curr, 2);
3564
54.4M
      __m128i prev = _mm_insert_epi16(prv0, t1, 0);
3565
54.4M
      __m128i next = _mm_insert_epi16(nxt0, 3*in_near[i+8] + in_far[i+8], 7);
3566
3567
      // horizontal filter, polyphase implementation since it's convenient:
3568
      // even pixels = 3*cur + prev = cur*4 + (prev - cur)
3569
      // odd  pixels = 3*cur + next = cur*4 + (next - cur)
3570
      // note the shared term.
3571
54.4M
      __m128i bias  = _mm_set1_epi16(8);
3572
54.4M
      __m128i curs = _mm_slli_epi16(curr, 2);
3573
54.4M
      __m128i prvd = _mm_sub_epi16(prev, curr);
3574
54.4M
      __m128i nxtd = _mm_sub_epi16(next, curr);
3575
54.4M
      __m128i curb = _mm_add_epi16(curs, bias);
3576
54.4M
      __m128i even = _mm_add_epi16(prvd, curb);
3577
54.4M
      __m128i odd  = _mm_add_epi16(nxtd, curb);
3578
3579
      // interleave even and odd pixels, then undo scaling.
3580
54.4M
      __m128i int0 = _mm_unpacklo_epi16(even, odd);
3581
54.4M
      __m128i int1 = _mm_unpackhi_epi16(even, odd);
3582
54.4M
      __m128i de0  = _mm_srli_epi16(int0, 4);
3583
54.4M
      __m128i de1  = _mm_srli_epi16(int1, 4);
3584
3585
      // pack and write output
3586
54.4M
      __m128i outv = _mm_packus_epi16(de0, de1);
3587
54.4M
      _mm_storeu_si128((__m128i *) (out + i*2), outv);
3588
#elif defined(STBI_NEON)
3589
      // load and perform the vertical filtering pass
3590
      // this uses 3*x + y = 4*x + (y - x)
3591
      uint8x8_t farb  = vld1_u8(in_far + i);
3592
      uint8x8_t nearb = vld1_u8(in_near + i);
3593
      int16x8_t diff  = vreinterpretq_s16_u16(vsubl_u8(farb, nearb));
3594
      int16x8_t nears = vreinterpretq_s16_u16(vshll_n_u8(nearb, 2));
3595
      int16x8_t curr  = vaddq_s16(nears, diff); // current row
3596
3597
      // horizontal filter works the same based on shifted vers of current
3598
      // row. "prev" is current row shifted right by 1 pixel; we need to
3599
      // insert the previous pixel value (from t1).
3600
      // "next" is current row shifted left by 1 pixel, with first pixel
3601
      // of next block of 8 pixels added in.
3602
      int16x8_t prv0 = vextq_s16(curr, curr, 7);
3603
      int16x8_t nxt0 = vextq_s16(curr, curr, 1);
3604
      int16x8_t prev = vsetq_lane_s16(t1, prv0, 0);
3605
      int16x8_t next = vsetq_lane_s16(3*in_near[i+8] + in_far[i+8], nxt0, 7);
3606
3607
      // horizontal filter, polyphase implementation since it's convenient:
3608
      // even pixels = 3*cur + prev = cur*4 + (prev - cur)
3609
      // odd  pixels = 3*cur + next = cur*4 + (next - cur)
3610
      // note the shared term.
3611
      int16x8_t curs = vshlq_n_s16(curr, 2);
3612
      int16x8_t prvd = vsubq_s16(prev, curr);
3613
      int16x8_t nxtd = vsubq_s16(next, curr);
3614
      int16x8_t even = vaddq_s16(curs, prvd);
3615
      int16x8_t odd  = vaddq_s16(curs, nxtd);
3616
3617
      // undo scaling and round, then store with even/odd phases interleaved
3618
      uint8x8x2_t o;
3619
      o.val[0] = vqrshrun_n_s16(even, 4);
3620
      o.val[1] = vqrshrun_n_s16(odd,  4);
3621
      vst2_u8(out + i*2, o);
3622
#endif
3623
3624
      // "previous" value for next iter
3625
54.4M
      t1 = 3*in_near[i+7] + in_far[i+7];
3626
54.4M
   }
3627
3628
885k
   t0 = t1;
3629
885k
   t1 = 3*in_near[i] + in_far[i];
3630
885k
   out[i*2] = stbi__div16(3*t1 + t0 + 8);
3631
3632
3.21M
   for (++i; i < w; ++i) {
3633
2.32M
      t0 = t1;
3634
2.32M
      t1 = 3*in_near[i]+in_far[i];
3635
2.32M
      out[i*2-1] = stbi__div16(3*t0 + t1 + 8);
3636
2.32M
      out[i*2  ] = stbi__div16(3*t1 + t0 + 8);
3637
2.32M
   }
3638
885k
   out[w*2-1] = stbi__div4(t1+2);
3639
3640
885k
   STBI_NOTUSED(hs);
3641
3642
885k
   return out;
3643
1.05M
}
3644
#endif
3645
3646
static stbi_uc *stbi__resample_row_generic(stbi_uc *out, stbi_uc *in_near, stbi_uc *in_far, int w, int hs)
3647
2.77M
{
3648
   // resample with nearest-neighbor
3649
2.77M
   int i,j;
3650
2.77M
   STBI_NOTUSED(in_far);
3651
754M
   for (i=0; i < w; ++i)
3652
2.28G
      for (j=0; j < hs; ++j)
3653
1.52G
         out[i*hs+j] = in_near[i];
3654
2.77M
   return out;
3655
2.77M
}
3656
3657
// this is a reduced-precision calculation of YCbCr-to-RGB introduced
3658
// to make sure the code produces the same results in both SIMD and scalar
3659
22.6M
#define stbi__float2fixed(x)  (((int) ((x) * 4096.0f + 0.5f)) << 8)
3660
static void stbi__YCbCr_to_RGB_row(stbi_uc *out, const stbi_uc *y, const stbi_uc *pcb, const stbi_uc *pcr, int count, int step)
3661
0
{
3662
0
   int i;
3663
0
   for (i=0; i < count; ++i) {
3664
0
      int y_fixed = (y[i] << 20) + (1<<19); // rounding
3665
0
      int r,g,b;
3666
0
      int cr = pcr[i] - 128;
3667
0
      int cb = pcb[i] - 128;
3668
0
      r = y_fixed +  cr* stbi__float2fixed(1.40200f);
3669
0
      g = y_fixed + (cr*-stbi__float2fixed(0.71414f)) + ((cb*-stbi__float2fixed(0.34414f)) & 0xffff0000);
3670
0
      b = y_fixed                                     +   cb* stbi__float2fixed(1.77200f);
3671
0
      r >>= 20;
3672
0
      g >>= 20;
3673
0
      b >>= 20;
3674
0
      if ((unsigned) r > 255) { if (r < 0) r = 0; else r = 255; }
3675
0
      if ((unsigned) g > 255) { if (g < 0) g = 0; else g = 255; }
3676
0
      if ((unsigned) b > 255) { if (b < 0) b = 0; else b = 255; }
3677
0
      out[0] = (stbi_uc)r;
3678
0
      out[1] = (stbi_uc)g;
3679
0
      out[2] = (stbi_uc)b;
3680
0
      out[3] = 255;
3681
0
      out += step;
3682
0
   }
3683
0
}
3684
3685
#if defined(STBI_SSE2) || defined(STBI_NEON)
3686
static void stbi__YCbCr_to_RGB_simd(stbi_uc *out, stbi_uc const *y, stbi_uc const *pcb, stbi_uc const *pcr, int count, int step)
3687
2.04M
{
3688
2.04M
   int i = 0;
3689
3690
2.04M
#ifdef STBI_SSE2
3691
   // step == 3 is pretty ugly on the final interleave, and i'm not convinced
3692
   // it's useful in practice (you wouldn't use it for textures, for example).
3693
   // so just accelerate step == 4 case.
3694
2.04M
   if (step == 4) {
3695
      // this is a fairly straightforward implementation and not super-optimized.
3696
2.04M
      __m128i signflip  = _mm_set1_epi8(-0x80);
3697
2.04M
      __m128i cr_const0 = _mm_set1_epi16(   (short) ( 1.40200f*4096.0f+0.5f));
3698
2.04M
      __m128i cr_const1 = _mm_set1_epi16( - (short) ( 0.71414f*4096.0f+0.5f));
3699
2.04M
      __m128i cb_const0 = _mm_set1_epi16( - (short) ( 0.34414f*4096.0f+0.5f));
3700
2.04M
      __m128i cb_const1 = _mm_set1_epi16(   (short) ( 1.77200f*4096.0f+0.5f));
3701
2.04M
      __m128i y_bias = _mm_set1_epi8((char) (unsigned char) 128);
3702
2.04M
      __m128i xw = _mm_set1_epi16(255); // alpha channel
3703
3704
168M
      for (; i+7 < count; i += 8) {
3705
         // load
3706
166M
         __m128i y_bytes = _mm_loadl_epi64((__m128i *) (y+i));
3707
166M
         __m128i cr_bytes = _mm_loadl_epi64((__m128i *) (pcr+i));
3708
166M
         __m128i cb_bytes = _mm_loadl_epi64((__m128i *) (pcb+i));
3709
166M
         __m128i cr_biased = _mm_xor_si128(cr_bytes, signflip); // -128
3710
166M
         __m128i cb_biased = _mm_xor_si128(cb_bytes, signflip); // -128
3711
3712
         // unpack to short (and left-shift cr, cb by 8)
3713
166M
         __m128i yw  = _mm_unpacklo_epi8(y_bias, y_bytes);
3714
166M
         __m128i crw = _mm_unpacklo_epi8(_mm_setzero_si128(), cr_biased);
3715
166M
         __m128i cbw = _mm_unpacklo_epi8(_mm_setzero_si128(), cb_biased);
3716
3717
         // color transform
3718
166M
         __m128i yws = _mm_srli_epi16(yw, 4);
3719
166M
         __m128i cr0 = _mm_mulhi_epi16(cr_const0, crw);
3720
166M
         __m128i cb0 = _mm_mulhi_epi16(cb_const0, cbw);
3721
166M
         __m128i cb1 = _mm_mulhi_epi16(cbw, cb_const1);
3722
166M
         __m128i cr1 = _mm_mulhi_epi16(crw, cr_const1);
3723
166M
         __m128i rws = _mm_add_epi16(cr0, yws);
3724
166M
         __m128i gwt = _mm_add_epi16(cb0, yws);
3725
166M
         __m128i bws = _mm_add_epi16(yws, cb1);
3726
166M
         __m128i gws = _mm_add_epi16(gwt, cr1);
3727
3728
         // descale
3729
166M
         __m128i rw = _mm_srai_epi16(rws, 4);
3730
166M
         __m128i bw = _mm_srai_epi16(bws, 4);
3731
166M
         __m128i gw = _mm_srai_epi16(gws, 4);
3732
3733
         // back to byte, set up for transpose
3734
166M
         __m128i brb = _mm_packus_epi16(rw, bw);
3735
166M
         __m128i gxb = _mm_packus_epi16(gw, xw);
3736
3737
         // transpose to interleave channels
3738
166M
         __m128i t0 = _mm_unpacklo_epi8(brb, gxb);
3739
166M
         __m128i t1 = _mm_unpackhi_epi8(brb, gxb);
3740
166M
         __m128i o0 = _mm_unpacklo_epi16(t0, t1);
3741
166M
         __m128i o1 = _mm_unpackhi_epi16(t0, t1);
3742
3743
         // store
3744
166M
         _mm_storeu_si128((__m128i *) (out + 0), o0);
3745
166M
         _mm_storeu_si128((__m128i *) (out + 16), o1);
3746
166M
         out += 32;
3747
166M
      }
3748
2.04M
   }
3749
2.04M
#endif
3750
3751
#ifdef STBI_NEON
3752
   // in this version, step=3 support would be easy to add. but is there demand?
3753
   if (step == 4) {
3754
      // this is a fairly straightforward implementation and not super-optimized.
3755
      uint8x8_t signflip = vdup_n_u8(0x80);
3756
      int16x8_t cr_const0 = vdupq_n_s16(   (short) ( 1.40200f*4096.0f+0.5f));
3757
      int16x8_t cr_const1 = vdupq_n_s16( - (short) ( 0.71414f*4096.0f+0.5f));
3758
      int16x8_t cb_const0 = vdupq_n_s16( - (short) ( 0.34414f*4096.0f+0.5f));
3759
      int16x8_t cb_const1 = vdupq_n_s16(   (short) ( 1.77200f*4096.0f+0.5f));
3760
3761
      for (; i+7 < count; i += 8) {
3762
         // load
3763
         uint8x8_t y_bytes  = vld1_u8(y + i);
3764
         uint8x8_t cr_bytes = vld1_u8(pcr + i);
3765
         uint8x8_t cb_bytes = vld1_u8(pcb + i);
3766
         int8x8_t cr_biased = vreinterpret_s8_u8(vsub_u8(cr_bytes, signflip));
3767
         int8x8_t cb_biased = vreinterpret_s8_u8(vsub_u8(cb_bytes, signflip));
3768
3769
         // expand to s16
3770
         int16x8_t yws = vreinterpretq_s16_u16(vshll_n_u8(y_bytes, 4));
3771
         int16x8_t crw = vshll_n_s8(cr_biased, 7);
3772
         int16x8_t cbw = vshll_n_s8(cb_biased, 7);
3773
3774
         // color transform
3775
         int16x8_t cr0 = vqdmulhq_s16(crw, cr_const0);
3776
         int16x8_t cb0 = vqdmulhq_s16(cbw, cb_const0);
3777
         int16x8_t cr1 = vqdmulhq_s16(crw, cr_const1);
3778
         int16x8_t cb1 = vqdmulhq_s16(cbw, cb_const1);
3779
         int16x8_t rws = vaddq_s16(yws, cr0);
3780
         int16x8_t gws = vaddq_s16(vaddq_s16(yws, cb0), cr1);
3781
         int16x8_t bws = vaddq_s16(yws, cb1);
3782
3783
         // undo scaling, round, convert to byte
3784
         uint8x8x4_t o;
3785
         o.val[0] = vqrshrun_n_s16(rws, 4);
3786
         o.val[1] = vqrshrun_n_s16(gws, 4);
3787
         o.val[2] = vqrshrun_n_s16(bws, 4);
3788
         o.val[3] = vdup_n_u8(255);
3789
3790
         // store, interleaving r/g/b/a
3791
         vst4_u8(out, o);
3792
         out += 8*4;
3793
      }
3794
   }
3795
#endif
3796
3797
7.70M
   for (; i < count; ++i) {
3798
5.66M
      int y_fixed = (y[i] << 20) + (1<<19); // rounding
3799
5.66M
      int r,g,b;
3800
5.66M
      int cr = pcr[i] - 128;
3801
5.66M
      int cb = pcb[i] - 128;
3802
5.66M
      r = y_fixed + cr* stbi__float2fixed(1.40200f);
3803
5.66M
      g = y_fixed + cr*-stbi__float2fixed(0.71414f) + ((cb*-stbi__float2fixed(0.34414f)) & 0xffff0000);
3804
5.66M
      b = y_fixed                                   +   cb* stbi__float2fixed(1.77200f);
3805
5.66M
      r >>= 20;
3806
5.66M
      g >>= 20;
3807
5.66M
      b >>= 20;
3808
5.66M
      if ((unsigned) r > 255) { if (r < 0) r = 0; else r = 255; }
3809
5.66M
      if ((unsigned) g > 255) { if (g < 0) g = 0; else g = 255; }
3810
5.66M
      if ((unsigned) b > 255) { if (b < 0) b = 0; else b = 255; }
3811
5.66M
      out[0] = (stbi_uc)r;
3812
5.66M
      out[1] = (stbi_uc)g;
3813
5.66M
      out[2] = (stbi_uc)b;
3814
5.66M
      out[3] = 255;
3815
5.66M
      out += step;
3816
5.66M
   }
3817
2.04M
}
3818
#endif
3819
3820
// set up the kernels
3821
static void stbi__setup_jpeg(stbi__jpeg *j)
3822
3.42k
{
3823
3.42k
   j->idct_block_kernel = stbi__idct_block;
3824
3.42k
   j->YCbCr_to_RGB_kernel = stbi__YCbCr_to_RGB_row;
3825
3.42k
   j->resample_row_hv_2_kernel = stbi__resample_row_hv_2;
3826
3827
3.42k
#ifdef STBI_SSE2
3828
3.42k
   if (stbi__sse2_available()) {
3829
3.42k
      j->idct_block_kernel = stbi__idct_simd;
3830
3.42k
      j->YCbCr_to_RGB_kernel = stbi__YCbCr_to_RGB_simd;
3831
3.42k
      j->resample_row_hv_2_kernel = stbi__resample_row_hv_2_simd;
3832
3.42k
   }
3833
3.42k
#endif
3834
3835
#ifdef STBI_NEON
3836
   j->idct_block_kernel = stbi__idct_simd;
3837
   j->YCbCr_to_RGB_kernel = stbi__YCbCr_to_RGB_simd;
3838
   j->resample_row_hv_2_kernel = stbi__resample_row_hv_2_simd;
3839
#endif
3840
3.42k
}
3841
3842
// clean up the temporary component buffers
3843
static void stbi__cleanup_jpeg(stbi__jpeg *j)
3844
1.31k
{
3845
1.31k
   stbi__free_jpeg_components(j, j->s->img_n, 0);
3846
1.31k
}
3847
3848
typedef struct
3849
{
3850
   resample_row_func resample;
3851
   stbi_uc *line0,*line1;
3852
   int hs,vs;   // expansion factor in each axis
3853
   int w_lores; // horizontal pixels pre-expansion
3854
   int ystep;   // how far through vertical expansion we are
3855
   int ypos;    // which pre-expansion row we're on
3856
} stbi__resample;
3857
3858
// fast 0..255 * 0..255 => 0..255 rounded multiplication
3859
static stbi_uc stbi__blinn_8x8(stbi_uc x, stbi_uc y)
3860
264M
{
3861
264M
   unsigned int t = x*y + 128;
3862
264M
   return (stbi_uc) ((t + (t >>8)) >> 8);
3863
264M
}
3864
3865
static stbi_uc *load_jpeg_image(stbi__jpeg *z, int *out_x, int *out_y, int *comp, int req_comp)
3866
1.31k
{
3867
1.31k
   int n, decode_n, is_rgb;
3868
1.31k
   z->s->img_n = 0; // make stbi__cleanup_jpeg safe
3869
3870
   // validate req_comp
3871
1.31k
   if (req_comp < 0 || req_comp > 4) return stbi__errpuc("bad req_comp", "Internal error");
3872
3873
   // load a jpeg image from whichever source, but leave in YCbCr format
3874
1.31k
   if (!stbi__decode_jpeg_image(z)) { stbi__cleanup_jpeg(z); return NULL; }
3875
3876
   // determine actual number of components to generate
3877
979
   n = req_comp ? req_comp : z->s->img_n >= 3 ? 3 : 1;
3878
3879
979
   is_rgb = z->s->img_n == 3 && (z->rgb == 3 || (z->app14_color_transform == 0 && !z->jfif));
3880
3881
979
   if (z->s->img_n == 3 && n < 3 && !is_rgb)
3882
0
      decode_n = 1;
3883
979
   else
3884
979
      decode_n = z->s->img_n;
3885
3886
   // nothing to do if no components requested; check this now to avoid
3887
   // accessing uninitialized coutput[0] later
3888
979
   if (decode_n <= 0) { stbi__cleanup_jpeg(z); return NULL; }
3889
3890
   // resample and color-convert
3891
979
   {
3892
979
      int k;
3893
979
      unsigned int i,j;
3894
979
      stbi_uc *output;
3895
979
      stbi_uc *coutput[4] = { NULL, NULL, NULL, NULL };
3896
3897
979
      stbi__resample res_comp[4];
3898
3899
2.74k
      for (k=0; k < decode_n; ++k) {
3900
1.76k
         stbi__resample *r = &res_comp[k];
3901
3902
         // allocate line buffer big enough for upsampling off the edges
3903
         // with upsample factor of 4
3904
1.76k
         z->img_comp[k].linebuf = (stbi_uc *) stbi__malloc(z->s->img_x + 3);
3905
1.76k
         if (!z->img_comp[k].linebuf) { stbi__cleanup_jpeg(z); return stbi__errpuc("outofmem", "Out of memory"); }
3906
3907
1.76k
         r->hs      = z->img_h_max / z->img_comp[k].h;
3908
1.76k
         r->vs      = z->img_v_max / z->img_comp[k].v;
3909
1.76k
         r->ystep   = r->vs >> 1;
3910
1.76k
         r->w_lores = (z->s->img_x + r->hs-1) / r->hs;
3911
1.76k
         r->ypos    = 0;
3912
1.76k
         r->line0   = r->line1 = z->img_comp[k].data;
3913
3914
1.76k
         if      (r->hs == 1 && r->vs == 1) r->resample = resample_row_1;
3915
851
         else if (r->hs == 1 && r->vs == 2) r->resample = stbi__resample_row_v_2;
3916
730
         else if (r->hs == 2 && r->vs == 1) r->resample = stbi__resample_row_h_2;
3917
616
         else if (r->hs == 2 && r->vs == 2) r->resample = z->resample_row_hv_2_kernel;
3918
334
         else                               r->resample = stbi__resample_row_generic;
3919
1.76k
      }
3920
3921
      // can't error after this so, this is safe
3922
979
      output = (stbi_uc *) stbi__malloc_mad3(n, z->s->img_x, z->s->img_y, 1);
3923
979
      if (!output) { stbi__cleanup_jpeg(z); return stbi__errpuc("outofmem", "Out of memory"); }
3924
3925
      // now go ahead and resample
3926
8.89M
      for (j=0; j < z->s->img_y; ++j) {
3927
8.89M
         stbi_uc *out = output + n * z->s->img_x * j;
3928
22.6M
         for (k=0; k < decode_n; ++k) {
3929
13.7M
            stbi__resample *r = &res_comp[k];
3930
13.7M
            int y_bot = r->ystep >= (r->vs >> 1);
3931
13.7M
            coutput[k] = r->resample(z->img_comp[k].linebuf,
3932
13.7M
                                     y_bot ? r->line1 : r->line0,
3933
13.7M
                                     y_bot ? r->line0 : r->line1,
3934
13.7M
                                     r->w_lores, r->hs);
3935
13.7M
            if (++r->ystep >= r->vs) {
3936
11.6M
               r->ystep = 0;
3937
11.6M
               r->line0 = r->line1;
3938
11.6M
               if (++r->ypos < z->img_comp[k].y)
3939
11.6M
                  r->line1 += z->img_comp[k].w2;
3940
11.6M
            }
3941
13.7M
         }
3942
8.89M
         if (n >= 3) {
3943
8.89M
            stbi_uc *y = coutput[0];
3944
8.89M
            if (z->s->img_n == 3) {
3945
1.90M
               if (is_rgb) {
3946
35.1M
                  for (i=0; i < z->s->img_x; ++i) {
3947
34.9M
                     out[0] = y[i];
3948
34.9M
                     out[1] = coutput[1][i];
3949
34.9M
                     out[2] = coutput[2][i];
3950
34.9M
                     out[3] = 255;
3951
34.9M
                     out += n;
3952
34.9M
                  }
3953
1.77M
               } else {
3954
1.77M
                  z->YCbCr_to_RGB_kernel(out, y, coutput[1], coutput[2], z->s->img_x, n);
3955
1.77M
               }
3956
6.98M
            } else if (z->s->img_n == 4) {
3957
342k
               if (z->app14_color_transform == 0) { // CMYK
3958
71.0M
                  for (i=0; i < z->s->img_x; ++i) {
3959
71.0M
                     stbi_uc m = coutput[3][i];
3960
71.0M
                     out[0] = stbi__blinn_8x8(coutput[0][i], m);
3961
71.0M
                     out[1] = stbi__blinn_8x8(coutput[1][i], m);
3962
71.0M
                     out[2] = stbi__blinn_8x8(coutput[2][i], m);
3963
71.0M
                     out[3] = 255;
3964
71.0M
                     out += n;
3965
71.0M
                  }
3966
270k
               } else if (z->app14_color_transform == 2) { // YCCK
3967
140k
                  z->YCbCr_to_RGB_kernel(out, y, coutput[1], coutput[2], z->s->img_x, n);
3968
17.3M
                  for (i=0; i < z->s->img_x; ++i) {
3969
17.2M
                     stbi_uc m = coutput[3][i];
3970
17.2M
                     out[0] = stbi__blinn_8x8(255 - out[0], m);
3971
17.2M
                     out[1] = stbi__blinn_8x8(255 - out[1], m);
3972
17.2M
                     out[2] = stbi__blinn_8x8(255 - out[2], m);
3973
17.2M
                     out += n;
3974
17.2M
                  }
3975
140k
               } else { // YCbCr + alpha?  Ignore the fourth channel for now
3976
129k
                  z->YCbCr_to_RGB_kernel(out, y, coutput[1], coutput[2], z->s->img_x, n);
3977
129k
               }
3978
342k
            } else
3979
2.80G
               for (i=0; i < z->s->img_x; ++i) {
3980
2.79G
                  out[0] = out[1] = out[2] = y[i];
3981
2.79G
                  out[3] = 255; // not used if n==3
3982
2.79G
                  out += n;
3983
2.79G
               }
3984
8.89M
         } else {
3985
0
            if (is_rgb) {
3986
0
               if (n == 1)
3987
0
                  for (i=0; i < z->s->img_x; ++i)
3988
0
                     *out++ = stbi__compute_y(coutput[0][i], coutput[1][i], coutput[2][i]);
3989
0
               else {
3990
0
                  for (i=0; i < z->s->img_x; ++i, out += 2) {
3991
0
                     out[0] = stbi__compute_y(coutput[0][i], coutput[1][i], coutput[2][i]);
3992
0
                     out[1] = 255;
3993
0
                  }
3994
0
               }
3995
0
            } else if (z->s->img_n == 4 && z->app14_color_transform == 0) {
3996
0
               for (i=0; i < z->s->img_x; ++i) {
3997
0
                  stbi_uc m = coutput[3][i];
3998
0
                  stbi_uc r = stbi__blinn_8x8(coutput[0][i], m);
3999
0
                  stbi_uc g = stbi__blinn_8x8(coutput[1][i], m);
4000
0
                  stbi_uc b = stbi__blinn_8x8(coutput[2][i], m);
4001
0
                  out[0] = stbi__compute_y(r, g, b);
4002
0
                  out[1] = 255;
4003
0
                  out += n;
4004
0
               }
4005
0
            } else if (z->s->img_n == 4 && z->app14_color_transform == 2) {
4006
0
               for (i=0; i < z->s->img_x; ++i) {
4007
0
                  out[0] = stbi__blinn_8x8(255 - coutput[0][i], coutput[3][i]);
4008
0
                  out[1] = 255;
4009
0
                  out += n;
4010
0
               }
4011
0
            } else {
4012
0
               stbi_uc *y = coutput[0];
4013
0
               if (n == 1)
4014
0
                  for (i=0; i < z->s->img_x; ++i) out[i] = y[i];
4015
0
               else
4016
0
                  for (i=0; i < z->s->img_x; ++i) { *out++ = y[i]; *out++ = 255; }
4017
0
            }
4018
0
         }
4019
8.89M
      }
4020
979
      stbi__cleanup_jpeg(z);
4021
979
      *out_x = z->s->img_x;
4022
979
      *out_y = z->s->img_y;
4023
979
      if (comp) *comp = z->s->img_n >= 3 ? 3 : 1; // report original components, not output
4024
979
      return output;
4025
979
   }
4026
979
}
4027
4028
static void *stbi__jpeg_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
4029
1.31k
{
4030
1.31k
   unsigned char* result;
4031
1.31k
   stbi__jpeg* j = (stbi__jpeg*) stbi__malloc(sizeof(stbi__jpeg));
4032
1.31k
   if (!j) return stbi__errpuc("outofmem", "Out of memory");
4033
1.31k
   memset(j, 0, sizeof(stbi__jpeg));
4034
1.31k
   STBI_NOTUSED(ri);
4035
1.31k
   j->s = s;
4036
1.31k
   stbi__setup_jpeg(j);
4037
1.31k
   result = load_jpeg_image(j, x,y,comp,req_comp);
4038
1.31k
   STBI_FREE(j);
4039
1.31k
   return result;
4040
1.31k
}
4041
4042
static int stbi__jpeg_test(stbi__context *s)
4043
2.11k
{
4044
2.11k
   int r;
4045
2.11k
   stbi__jpeg* j = (stbi__jpeg*)stbi__malloc(sizeof(stbi__jpeg));
4046
2.11k
   if (!j) return stbi__err("outofmem", "Out of memory");
4047
2.11k
   memset(j, 0, sizeof(stbi__jpeg));
4048
2.11k
   j->s = s;
4049
2.11k
   stbi__setup_jpeg(j);
4050
2.11k
   r = stbi__decode_jpeg_header(j, STBI__SCAN_type);
4051
2.11k
   stbi__rewind(s);
4052
2.11k
   STBI_FREE(j);
4053
2.11k
   return r;
4054
2.11k
}
4055
4056
static int stbi__jpeg_info_raw(stbi__jpeg *j, int *x, int *y, int *comp)
4057
6.45k
{
4058
6.45k
   if (!stbi__decode_jpeg_header(j, STBI__SCAN_header)) {
4059
5.13k
      stbi__rewind( j->s );
4060
5.13k
      return 0;
4061
5.13k
   }
4062
1.31k
   if (x) *x = j->s->img_x;
4063
1.31k
   if (y) *y = j->s->img_y;
4064
1.31k
   if (comp) *comp = j->s->img_n >= 3 ? 3 : 1;
4065
1.31k
   return 1;
4066
6.45k
}
4067
4068
static int stbi__jpeg_info(stbi__context *s, int *x, int *y, int *comp)
4069
6.45k
{
4070
6.45k
   int result;
4071
6.45k
   stbi__jpeg* j = (stbi__jpeg*) (stbi__malloc(sizeof(stbi__jpeg)));
4072
6.45k
   if (!j) return stbi__err("outofmem", "Out of memory");
4073
6.45k
   memset(j, 0, sizeof(stbi__jpeg));
4074
6.45k
   j->s = s;
4075
6.45k
   result = stbi__jpeg_info_raw(j, x, y, comp);
4076
6.45k
   STBI_FREE(j);
4077
6.45k
   return result;
4078
6.45k
}
4079
#endif
4080
4081
// public domain zlib decode    v0.2  Sean Barrett 2006-11-18
4082
//    simple implementation
4083
//      - all input must be provided in an upfront buffer
4084
//      - all output is written to a single output buffer (can malloc/realloc)
4085
//    performance
4086
//      - fast huffman
4087
4088
#ifndef STBI_NO_ZLIB
4089
4090
// fast-way is faster to check than jpeg huffman, but slow way is slower
4091
20.3M
#define STBI__ZFAST_BITS  9 // accelerate all cases in default tables
4092
8.76M
#define STBI__ZFAST_MASK  ((1 << STBI__ZFAST_BITS) - 1)
4093
80.5k
#define STBI__ZNSYMS 288 // number of symbols in literal/length alphabet
4094
4095
// zlib-style huffman encoding
4096
// (jpegs packs from left, zlib from right, so can't share code)
4097
typedef struct
4098
{
4099
   stbi__uint16 fast[1 << STBI__ZFAST_BITS];
4100
   stbi__uint16 firstcode[16];
4101
   int maxcode[17];
4102
   stbi__uint16 firstsymbol[16];
4103
   stbi_uc  size[STBI__ZNSYMS];
4104
   stbi__uint16 value[STBI__ZNSYMS];
4105
} stbi__zhuffman;
4106
4107
stbi_inline static int stbi__bitreverse16(int n)
4108
1.81M
{
4109
1.81M
  n = ((n & 0xAAAA) >>  1) | ((n & 0x5555) << 1);
4110
1.81M
  n = ((n & 0xCCCC) >>  2) | ((n & 0x3333) << 2);
4111
1.81M
  n = ((n & 0xF0F0) >>  4) | ((n & 0x0F0F) << 4);
4112
1.81M
  n = ((n & 0xFF00) >>  8) | ((n & 0x00FF) << 8);
4113
1.81M
  return n;
4114
1.81M
}
4115
4116
stbi_inline static int stbi__bit_reverse(int v, int bits)
4117
1.81M
{
4118
1.81M
   STBI_ASSERT(bits <= 16);
4119
   // to bit reverse n bits, reverse 16 and shift
4120
   // e.g. 11 bits, bit reverse and shift away 5
4121
1.81M
   return stbi__bitreverse16(v) >> (16-bits);
4122
1.81M
}
4123
4124
static int stbi__zbuild_huffman(stbi__zhuffman *z, const stbi_uc *sizelist, int num)
4125
21.6k
{
4126
21.6k
   int i,k=0;
4127
21.6k
   int code, next_code[16], sizes[17];
4128
4129
   // DEFLATE spec for generating codes
4130
21.6k
   memset(sizes, 0, sizeof(sizes));
4131
21.6k
   memset(z->fast, 0, sizeof(z->fast));
4132
2.73M
   for (i=0; i < num; ++i)
4133
2.71M
      ++sizes[sizelist[i]];
4134
21.6k
   sizes[0] = 0;
4135
346k
   for (i=1; i < 16; ++i)
4136
324k
      if (sizes[i] > (1 << i))
4137
10
         return stbi__err("bad sizes", "Corrupt PNG");
4138
21.6k
   code = 0;
4139
346k
   for (i=1; i < 16; ++i) {
4140
324k
      next_code[i] = code;
4141
324k
      z->firstcode[i] = (stbi__uint16) code;
4142
324k
      z->firstsymbol[i] = (stbi__uint16) k;
4143
324k
      code = (code + sizes[i]);
4144
324k
      if (sizes[i])
4145
62.8k
         if (code-1 >= (1 << i)) return stbi__err("bad codelengths","Corrupt PNG");
4146
324k
      z->maxcode[i] = code << (16-i); // preshift for inner loop
4147
324k
      code <<= 1;
4148
324k
      k += sizes[i];
4149
324k
   }
4150
21.6k
   z->maxcode[16] = 0x10000; // sentinel
4151
2.73M
   for (i=0; i < num; ++i) {
4152
2.71M
      int s = sizelist[i];
4153
2.71M
      if (s) {
4154
1.79M
         int c = next_code[s] - z->firstcode[s] + z->firstsymbol[s];
4155
1.79M
         stbi__uint16 fastv = (stbi__uint16) ((s << 9) | i);
4156
1.79M
         z->size [c] = (stbi_uc     ) s;
4157
1.79M
         z->value[c] = (stbi__uint16) i;
4158
1.79M
         if (s <= STBI__ZFAST_BITS) {
4159
1.73M
            int j = stbi__bit_reverse(next_code[s],s);
4160
9.74M
            while (j < (1 << STBI__ZFAST_BITS)) {
4161
8.00M
               z->fast[j] = fastv;
4162
8.00M
               j += (1 << s);
4163
8.00M
            }
4164
1.73M
         }
4165
1.79M
         ++next_code[s];
4166
1.79M
      }
4167
2.71M
   }
4168
21.6k
   return 1;
4169
21.6k
}
4170
4171
// zlib-from-memory implementation for PNG reading
4172
//    because PNG allows splitting the zlib stream arbitrarily,
4173
//    and it's annoying structurally to have PNG call ZLIB call PNG,
4174
//    we require PNG read all the IDATs and combine them into a single
4175
//    memory buffer
4176
4177
typedef struct
4178
{
4179
   stbi_uc *zbuffer, *zbuffer_end;
4180
   int num_bits;
4181
   int hit_zeof_once;
4182
   stbi__uint32 code_buffer;
4183
4184
   char *zout;
4185
   char *zout_start;
4186
   char *zout_end;
4187
   int   z_expandable;
4188
4189
   stbi__zhuffman z_length, z_distance;
4190
} stbi__zbuf;
4191
4192
stbi_inline static int stbi__zeof(stbi__zbuf *z)
4193
3.98M
{
4194
3.98M
   return (z->zbuffer >= z->zbuffer_end);
4195
3.98M
}
4196
4197
stbi_inline static stbi_uc stbi__zget8(stbi__zbuf *z)
4198
2.71M
{
4199
2.71M
   return stbi__zeof(z) ? 0 : *z->zbuffer++;
4200
2.71M
}
4201
4202
static void stbi__fill_bits(stbi__zbuf *z)
4203
1.28M
{
4204
2.70M
   do {
4205
2.70M
      if (z->code_buffer >= (1U << z->num_bits)) {
4206
0
        z->zbuffer = z->zbuffer_end;  /* treat this as EOF so we fail. */
4207
0
        return;
4208
0
      }
4209
2.70M
      z->code_buffer |= (unsigned int) stbi__zget8(z) << z->num_bits;
4210
2.70M
      z->num_bits += 8;
4211
2.70M
   } while (z->num_bits <= 24);
4212
1.28M
}
4213
4214
stbi_inline static unsigned int stbi__zreceive(stbi__zbuf *z, int n)
4215
436k
{
4216
436k
   unsigned int k;
4217
436k
   if (z->num_bits < n) stbi__fill_bits(z);
4218
436k
   k = z->code_buffer & ((1 << n) - 1);
4219
436k
   z->code_buffer >>= n;
4220
436k
   z->num_bits -= n;
4221
436k
   return k;
4222
436k
}
4223
4224
static int stbi__zhuffman_decode_slowpath(stbi__zbuf *a, stbi__zhuffman *z)
4225
75.6k
{
4226
75.6k
   int b,s,k;
4227
   // not resolved by fast table, so compute it the slow way
4228
   // use jpeg approach, which requires MSbits at top
4229
75.6k
   k = stbi__bit_reverse(a->code_buffer, 16);
4230
75.6k
   for (s=STBI__ZFAST_BITS+1; ; ++s)
4231
128k
      if (k < z->maxcode[s])
4232
75.6k
         break;
4233
75.6k
   if (s >= 16) return -1; // invalid code!
4234
   // code size is s, so:
4235
75.5k
   b = (k >> (16-s)) - z->firstcode[s] + z->firstsymbol[s];
4236
75.5k
   if (b >= STBI__ZNSYMS) return -1; // some data was corrupt somewhere!
4237
75.5k
   if (z->size[b] != s) return -1;  // was originally an assert, but report failure instead.
4238
75.5k
   a->code_buffer >>= s;
4239
75.5k
   a->num_bits -= s;
4240
75.5k
   return z->value[b];
4241
75.5k
}
4242
4243
stbi_inline static int stbi__zhuffman_decode(stbi__zbuf *a, stbi__zhuffman *z)
4244
8.76M
{
4245
8.76M
   int b,s;
4246
8.76M
   if (a->num_bits < 16) {
4247
1.26M
      if (stbi__zeof(a)) {
4248
450
         if (!a->hit_zeof_once) {
4249
            // This is the first time we hit eof, insert 16 extra padding btis
4250
            // to allow us to keep going; if we actually consume any of them
4251
            // though, that is invalid data. This is caught later.
4252
371
            a->hit_zeof_once = 1;
4253
371
            a->num_bits += 16; // add 16 implicit zero bits
4254
371
         } else {
4255
            // We already inserted our extra 16 padding bits and are again
4256
            // out, this stream is actually prematurely terminated.
4257
79
            return -1;
4258
79
         }
4259
1.26M
      } else {
4260
1.26M
         stbi__fill_bits(a);
4261
1.26M
      }
4262
1.26M
   }
4263
8.76M
   b = z->fast[a->code_buffer & STBI__ZFAST_MASK];
4264
8.76M
   if (b) {
4265
8.68M
      s = b >> 9;
4266
8.68M
      a->code_buffer >>= s;
4267
8.68M
      a->num_bits -= s;
4268
8.68M
      return b & 511;
4269
8.68M
   }
4270
75.6k
   return stbi__zhuffman_decode_slowpath(a, z);
4271
8.76M
}
4272
4273
static int stbi__zexpand(stbi__zbuf *z, char *zout, int n)  // need to make room for n bytes
4274
920
{
4275
920
   char *q;
4276
920
   unsigned int cur, limit, old_limit;
4277
920
   z->zout = zout;
4278
920
   if (!z->z_expandable) return stbi__err("output buffer limit","Corrupt PNG");
4279
920
   cur   = (unsigned int) (z->zout - z->zout_start);
4280
920
   limit = old_limit = (unsigned) (z->zout_end - z->zout_start);
4281
920
   if (UINT_MAX - cur < (unsigned) n) return stbi__err("outofmem", "Out of memory");
4282
2.05k
   while (cur + n > limit) {
4283
1.13k
      if(limit > UINT_MAX / 2) return stbi__err("outofmem", "Out of memory");
4284
1.13k
      limit *= 2;
4285
1.13k
   }
4286
920
   q = (char *) STBI_REALLOC_SIZED(z->zout_start, old_limit, limit);
4287
920
   STBI_NOTUSED(old_limit);
4288
920
   if (q == NULL) return stbi__err("outofmem", "Out of memory");
4289
920
   z->zout_start = q;
4290
920
   z->zout       = q + cur;
4291
920
   z->zout_end   = q + limit;
4292
920
   return 1;
4293
920
}
4294
4295
static const int stbi__zlength_base[31] = {
4296
   3,4,5,6,7,8,9,10,11,13,
4297
   15,17,19,23,27,31,35,43,51,59,
4298
   67,83,99,115,131,163,195,227,258,0,0 };
4299
4300
static const int stbi__zlength_extra[31]=
4301
{ 0,0,0,0,0,0,0,0,1,1,1,1,2,2,2,2,3,3,3,3,4,4,4,4,5,5,5,5,0,0,0 };
4302
4303
static const int stbi__zdist_base[32] = { 1,2,3,4,5,7,9,13,17,25,33,49,65,97,129,193,
4304
257,385,513,769,1025,1537,2049,3073,4097,6145,8193,12289,16385,24577,0,0};
4305
4306
static const int stbi__zdist_extra[32] =
4307
{ 0,0,0,0,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13};
4308
4309
static int stbi__parse_huffman_block(stbi__zbuf *a)
4310
8.82k
{
4311
8.82k
   char *zout = a->zout;
4312
4.99M
   for(;;) {
4313
4.99M
      int z = stbi__zhuffman_decode(a, &a->z_length);
4314
4.99M
      if (z < 256) {
4315
1.39M
         if (z < 0) return stbi__err("bad huffman code","Corrupt PNG"); // error in huffman codes
4316
1.39M
         if (zout >= a->zout_end) {
4317
298
            if (!stbi__zexpand(a, zout, 1)) return 0;
4318
298
            zout = a->zout;
4319
298
         }
4320
1.39M
         *zout++ = (char) z;
4321
3.59M
      } else {
4322
3.59M
         stbi_uc *p;
4323
3.59M
         int len,dist;
4324
3.59M
         if (z == 256) {
4325
8.71k
            a->zout = zout;
4326
8.71k
            if (a->hit_zeof_once && a->num_bits < 16) {
4327
               // The first time we hit zeof, we inserted 16 extra zero bits into our bit
4328
               // buffer so the decoder can just do its speculative decoding. But if we
4329
               // actually consumed any of those bits (which is the case when num_bits < 16),
4330
               // the stream actually read past the end so it is malformed.
4331
16
               return stbi__err("unexpected end","Corrupt PNG");
4332
16
            }
4333
8.70k
            return 1;
4334
8.71k
         }
4335
3.58M
         if (z >= 286) return stbi__err("bad huffman code","Corrupt PNG"); // per DEFLATE, length codes 286 and 287 must not appear in compressed data
4336
3.58M
         z -= 257;
4337
3.58M
         len = stbi__zlength_base[z];
4338
3.58M
         if (stbi__zlength_extra[z]) len += stbi__zreceive(a, stbi__zlength_extra[z]);
4339
3.58M
         z = stbi__zhuffman_decode(a, &a->z_distance);
4340
3.58M
         if (z < 0 || z >= 30) return stbi__err("bad huffman code","Corrupt PNG"); // per DEFLATE, distance codes 30 and 31 must not appear in compressed data
4341
3.58M
         dist = stbi__zdist_base[z];
4342
3.58M
         if (stbi__zdist_extra[z]) dist += stbi__zreceive(a, stbi__zdist_extra[z]);
4343
3.58M
         if (zout - a->zout_start < dist) return stbi__err("bad dist","Corrupt PNG");
4344
3.58M
         if (len > a->zout_end - zout) {
4345
543
            if (!stbi__zexpand(a, zout, len)) return 0;
4346
543
            zout = a->zout;
4347
543
         }
4348
3.58M
         p = (stbi_uc *) (zout - dist);
4349
3.58M
         if (dist == 1) { // run of one byte; common in images.
4350
3.21M
            stbi_uc v = *p;
4351
825M
            if (len) { do *zout++ = v; while (--len); }
4352
3.21M
         } else {
4353
48.6M
            if (len) { do *zout++ = *p++; while (--len); }
4354
377k
         }
4355
3.58M
      }
4356
4.99M
   }
4357
8.82k
}
4358
4359
static int stbi__compute_huffman_codes(stbi__zbuf *a)
4360
3.99k
{
4361
3.99k
   static const stbi_uc length_dezigzag[19] = { 16,17,18,0,8,7,9,6,10,5,11,4,12,3,13,2,14,1,15 };
4362
3.99k
   stbi__zhuffman z_codelength;
4363
3.99k
   stbi_uc lencodes[286+32+137];//padding for maximum single op
4364
3.99k
   stbi_uc codelength_sizes[19];
4365
3.99k
   int i,n;
4366
4367
3.99k
   int hlit  = stbi__zreceive(a,5) + 257;
4368
3.99k
   int hdist = stbi__zreceive(a,5) + 1;
4369
3.99k
   int hclen = stbi__zreceive(a,4) + 4;
4370
3.99k
   int ntot  = hlit + hdist;
4371
4372
3.99k
   memset(codelength_sizes, 0, sizeof(codelength_sizes));
4373
68.7k
   for (i=0; i < hclen; ++i) {
4374
64.7k
      int s = stbi__zreceive(a,3);
4375
64.7k
      codelength_sizes[length_dezigzag[i]] = (stbi_uc) s;
4376
64.7k
   }
4377
3.99k
   if (!stbi__zbuild_huffman(&z_codelength, codelength_sizes, 19)) return 0;
4378
4379
3.97k
   n = 0;
4380
188k
   while (n < ntot) {
4381
184k
      int c = stbi__zhuffman_decode(a, &z_codelength);
4382
184k
      if (c < 0 || c >= 19) return stbi__err("bad codelengths", "Corrupt PNG");
4383
184k
      if (c < 16)
4384
162k
         lencodes[n++] = (stbi_uc) c;
4385
21.5k
      else {
4386
21.5k
         stbi_uc fill = 0;
4387
21.5k
         if (c == 16) {
4388
5.05k
            c = stbi__zreceive(a,2)+3;
4389
5.05k
            if (n == 0) return stbi__err("bad codelengths", "Corrupt PNG");
4390
5.03k
            fill = lencodes[n-1];
4391
16.5k
         } else if (c == 17) {
4392
7.57k
            c = stbi__zreceive(a,3)+3;
4393
8.96k
         } else if (c == 18) {
4394
8.96k
            c = stbi__zreceive(a,7)+11;
4395
8.96k
         } else {
4396
0
            return stbi__err("bad codelengths", "Corrupt PNG");
4397
0
         }
4398
21.5k
         if (ntot - n < c) return stbi__err("bad codelengths", "Corrupt PNG");
4399
21.5k
         memset(lencodes+n, fill, c);
4400
21.5k
         n += c;
4401
21.5k
      }
4402
184k
   }
4403
3.86k
   if (n != ntot) return stbi__err("bad codelengths","Corrupt PNG");
4404
3.86k
   if (!stbi__zbuild_huffman(&a->z_length, lencodes, hlit)) return 0;
4405
3.85k
   if (!stbi__zbuild_huffman(&a->z_distance, lencodes+hlit, hdist)) return 0;
4406
3.85k
   return 1;
4407
3.85k
}
4408
4409
static int stbi__parse_uncompressed_block(stbi__zbuf *a)
4410
2.95k
{
4411
2.95k
   stbi_uc header[4];
4412
2.95k
   int len,nlen,k;
4413
2.95k
   if (a->num_bits & 7)
4414
2.04k
      stbi__zreceive(a, a->num_bits & 7); // discard
4415
   // drain the bit-packed data into header
4416
2.95k
   k = 0;
4417
7.92k
   while (a->num_bits > 0) {
4418
4.96k
      header[k++] = (stbi_uc) (a->code_buffer & 255); // suppress MSVC run-time check
4419
4.96k
      a->code_buffer >>= 8;
4420
4.96k
      a->num_bits -= 8;
4421
4.96k
   }
4422
2.95k
   if (a->num_bits < 0) return stbi__err("zlib corrupt","Corrupt PNG");
4423
   // now fill header the normal way
4424
9.82k
   while (k < 4)
4425
6.86k
      header[k++] = stbi__zget8(a);
4426
2.95k
   len  = header[1] * 256 + header[0];
4427
2.95k
   nlen = header[3] * 256 + header[2];
4428
2.95k
   if (nlen != (len ^ 0xffff)) return stbi__err("zlib corrupt","Corrupt PNG");
4429
2.84k
   if (a->zbuffer + len > a->zbuffer_end) return stbi__err("read past buffer","Corrupt PNG");
4430
2.84k
   if (a->zout + len > a->zout_end)
4431
79
      if (!stbi__zexpand(a, a->zout, len)) return 0;
4432
2.84k
   memcpy(a->zout, a->zbuffer, len);
4433
2.84k
   a->zbuffer += len;
4434
2.84k
   a->zout += len;
4435
2.84k
   return 1;
4436
2.84k
}
4437
4438
static int stbi__parse_zlib_header(stbi__zbuf *a)
4439
898
{
4440
898
   int cmf   = stbi__zget8(a);
4441
898
   int cm    = cmf & 15;
4442
   /* int cinfo = cmf >> 4; */
4443
898
   int flg   = stbi__zget8(a);
4444
898
   if (stbi__zeof(a)) return stbi__err("bad zlib header","Corrupt PNG"); // zlib spec
4445
896
   if ((cmf*256+flg) % 31 != 0) return stbi__err("bad zlib header","Corrupt PNG"); // zlib spec
4446
895
   if (flg & 32) return stbi__err("no preset dict","Corrupt PNG"); // preset dictionary not allowed in png
4447
894
   if (cm != 8) return stbi__err("bad compression","Corrupt PNG"); // DEFLATE required for png
4448
   // window = 1 << (8 + cinfo)... but who cares, we fully buffer output
4449
892
   return 1;
4450
894
}
4451
4452
static const stbi_uc stbi__zdefault_length[STBI__ZNSYMS] =
4453
{
4454
   8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8, 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
4455
   8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8, 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
4456
   8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8, 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
4457
   8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8, 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
4458
   8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8, 9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,
4459
   9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9, 9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,
4460
   9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9, 9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,
4461
   9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9, 9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,9,
4462
   7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7, 7,7,7,7,7,7,7,7,8,8,8,8,8,8,8,8
4463
};
4464
static const stbi_uc stbi__zdefault_distance[32] =
4465
{
4466
   5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5
4467
};
4468
/*
4469
Init algorithm:
4470
{
4471
   int i;   // use <= to match clearly with spec
4472
   for (i=0; i <= 143; ++i)     stbi__zdefault_length[i]   = 8;
4473
   for (   ; i <= 255; ++i)     stbi__zdefault_length[i]   = 9;
4474
   for (   ; i <= 279; ++i)     stbi__zdefault_length[i]   = 7;
4475
   for (   ; i <= 287; ++i)     stbi__zdefault_length[i]   = 8;
4476
4477
   for (i=0; i <=  31; ++i)     stbi__zdefault_distance[i] = 5;
4478
}
4479
*/
4480
4481
static int stbi__parse_zlib(stbi__zbuf *a, int parse_header)
4482
901
{
4483
901
   int final, type;
4484
901
   if (parse_header)
4485
898
      if (!stbi__parse_zlib_header(a)) return 0;
4486
895
   a->num_bits = 0;
4487
895
   a->code_buffer = 0;
4488
895
   a->hit_zeof_once = 0;
4489
11.9k
   do {
4490
11.9k
      final = stbi__zreceive(a,1);
4491
11.9k
      type = stbi__zreceive(a,2);
4492
11.9k
      if (type == 0) {
4493
2.95k
         if (!stbi__parse_uncompressed_block(a)) return 0;
4494
8.97k
      } else if (type == 3) {
4495
9
         return 0;
4496
8.96k
      } else {
4497
8.96k
         if (type == 1) {
4498
            // use fixed code lengths
4499
4.96k
            if (!stbi__zbuild_huffman(&a->z_length  , stbi__zdefault_length  , STBI__ZNSYMS)) return 0;
4500
4.96k
            if (!stbi__zbuild_huffman(&a->z_distance, stbi__zdefault_distance,  32)) return 0;
4501
4.96k
         } else {
4502
3.99k
            if (!stbi__compute_huffman_codes(a)) return 0;
4503
3.99k
         }
4504
8.82k
         if (!stbi__parse_huffman_block(a)) return 0;
4505
8.82k
      }
4506
11.9k
   } while (!final);
4507
510
   return 1;
4508
895
}
4509
4510
static int stbi__do_zlib(stbi__zbuf *a, char *obuf, int olen, int exp, int parse_header)
4511
901
{
4512
901
   a->zout_start = obuf;
4513
901
   a->zout       = obuf;
4514
901
   a->zout_end   = obuf + olen;
4515
901
   a->z_expandable = exp;
4516
4517
901
   return stbi__parse_zlib(a, parse_header);
4518
901
}
4519
4520
STBIDEF char *stbi_zlib_decode_malloc_guesssize(const char *buffer, int len, int initial_size, int *outlen)
4521
0
{
4522
0
   stbi__zbuf a;
4523
0
   char *p = (char *) stbi__malloc(initial_size);
4524
0
   if (p == NULL) return NULL;
4525
0
   a.zbuffer = (stbi_uc *) buffer;
4526
0
   a.zbuffer_end = (stbi_uc *) buffer + len;
4527
0
   if (stbi__do_zlib(&a, p, initial_size, 1, 1)) {
4528
0
      if (outlen) *outlen = (int) (a.zout - a.zout_start);
4529
0
      return a.zout_start;
4530
0
   } else {
4531
0
      STBI_FREE(a.zout_start);
4532
0
      return NULL;
4533
0
   }
4534
0
}
4535
4536
STBIDEF char *stbi_zlib_decode_malloc(char const *buffer, int len, int *outlen)
4537
0
{
4538
0
   return stbi_zlib_decode_malloc_guesssize(buffer, len, 16384, outlen);
4539
0
}
4540
4541
STBIDEF char *stbi_zlib_decode_malloc_guesssize_headerflag(const char *buffer, int len, int initial_size, int *outlen, int parse_header)
4542
901
{
4543
901
   stbi__zbuf a;
4544
901
   char *p = (char *) stbi__malloc(initial_size);
4545
901
   if (p == NULL) return NULL;
4546
901
   a.zbuffer = (stbi_uc *) buffer;
4547
901
   a.zbuffer_end = (stbi_uc *) buffer + len;
4548
901
   if (stbi__do_zlib(&a, p, initial_size, 1, parse_header)) {
4549
510
      if (outlen) *outlen = (int) (a.zout - a.zout_start);
4550
510
      return a.zout_start;
4551
510
   } else {
4552
391
      STBI_FREE(a.zout_start);
4553
391
      return NULL;
4554
391
   }
4555
901
}
4556
4557
STBIDEF int stbi_zlib_decode_buffer(char *obuffer, int olen, char const *ibuffer, int ilen)
4558
0
{
4559
0
   stbi__zbuf a;
4560
0
   a.zbuffer = (stbi_uc *) ibuffer;
4561
0
   a.zbuffer_end = (stbi_uc *) ibuffer + ilen;
4562
0
   if (stbi__do_zlib(&a, obuffer, olen, 0, 1))
4563
0
      return (int) (a.zout - a.zout_start);
4564
0
   else
4565
0
      return -1;
4566
0
}
4567
4568
STBIDEF char *stbi_zlib_decode_noheader_malloc(char const *buffer, int len, int *outlen)
4569
0
{
4570
0
   stbi__zbuf a;
4571
0
   char *p = (char *) stbi__malloc(16384);
4572
0
   if (p == NULL) return NULL;
4573
0
   a.zbuffer = (stbi_uc *) buffer;
4574
0
   a.zbuffer_end = (stbi_uc *) buffer+len;
4575
0
   if (stbi__do_zlib(&a, p, 16384, 1, 0)) {
4576
0
      if (outlen) *outlen = (int) (a.zout - a.zout_start);
4577
0
      return a.zout_start;
4578
0
   } else {
4579
0
      STBI_FREE(a.zout_start);
4580
0
      return NULL;
4581
0
   }
4582
0
}
4583
4584
STBIDEF int stbi_zlib_decode_noheader_buffer(char *obuffer, int olen, const char *ibuffer, int ilen)
4585
0
{
4586
0
   stbi__zbuf a;
4587
0
   a.zbuffer = (stbi_uc *) ibuffer;
4588
0
   a.zbuffer_end = (stbi_uc *) ibuffer + ilen;
4589
0
   if (stbi__do_zlib(&a, obuffer, olen, 0, 0))
4590
0
      return (int) (a.zout - a.zout_start);
4591
0
   else
4592
0
      return -1;
4593
0
}
4594
#endif
4595
4596
// public domain "baseline" PNG decoder   v0.10  Sean Barrett 2006-11-18
4597
//    simple implementation
4598
//      - only 8-bit samples
4599
//      - no CRC checking
4600
//      - allocates lots of intermediate memory
4601
//        - avoids problem of streaming data between subsystems
4602
//        - avoids explicit window management
4603
//    performance
4604
//      - uses stb_zlib, a PD zlib implementation with fast huffman decoding
4605
4606
#ifndef STBI_NO_PNG
4607
typedef struct
4608
{
4609
   stbi__uint32 length;
4610
   stbi__uint32 type;
4611
} stbi__pngchunk;
4612
4613
static stbi__pngchunk stbi__get_chunk_header(stbi__context *s)
4614
15.0k
{
4615
15.0k
   stbi__pngchunk c;
4616
15.0k
   c.length = stbi__get32be(s);
4617
15.0k
   c.type   = stbi__get32be(s);
4618
15.0k
   return c;
4619
15.0k
}
4620
4621
static int stbi__check_png_header(stbi__context *s)
4622
11.3k
{
4623
11.3k
   static const stbi_uc png_sig[8] = { 137,80,78,71,13,10,26,10 };
4624
11.3k
   int i;
4625
42.6k
   for (i=0; i < 8; ++i)
4626
38.7k
      if (stbi__get8(s) != png_sig[i]) return stbi__err("bad png sig","Not a PNG");
4627
3.90k
   return 1;
4628
11.3k
}
4629
4630
typedef struct
4631
{
4632
   stbi__context *s;
4633
   stbi_uc *idata, *expanded, *out;
4634
   int depth;
4635
} stbi__png;
4636
4637
4638
enum {
4639
   STBI__F_none=0,
4640
   STBI__F_sub=1,
4641
   STBI__F_up=2,
4642
   STBI__F_avg=3,
4643
   STBI__F_paeth=4,
4644
   // synthetic filter used for first scanline to avoid needing a dummy row of 0s
4645
   STBI__F_avg_first
4646
};
4647
4648
static stbi_uc first_row_filter[5] =
4649
{
4650
   STBI__F_none,
4651
   STBI__F_sub,
4652
   STBI__F_none,
4653
   STBI__F_avg_first,
4654
   STBI__F_sub // Paeth with b=c=0 turns out to be equivalent to sub
4655
};
4656
4657
static int stbi__paeth(int a, int b, int c)
4658
198k
{
4659
   // This formulation looks very different from the reference in the PNG spec, but is
4660
   // actually equivalent and has favorable data dependencies and admits straightforward
4661
   // generation of branch-free code, which helps performance significantly.
4662
198k
   int thresh = c*3 - (a + b);
4663
198k
   int lo = a < b ? a : b;
4664
198k
   int hi = a < b ? b : a;
4665
198k
   int t0 = (hi <= thresh) ? lo : c;
4666
198k
   int t1 = (thresh <= lo) ? hi : t0;
4667
198k
   return t1;
4668
198k
}
4669
4670
static const stbi_uc stbi__depth_scale_table[9] = { 0, 0xff, 0x55, 0, 0x11, 0,0,0, 0x01 };
4671
4672
// adds an extra all-255 alpha channel
4673
// dest == src is legal
4674
// img_n must be 1 or 3
4675
static void stbi__create_png_alpha_expand8(stbi_uc *dest, stbi_uc *src, stbi__uint32 x, int img_n)
4676
203k
{
4677
203k
   int i;
4678
   // must process data backwards since we allow dest==src
4679
203k
   if (img_n == 1) {
4680
106k
      for (i=x-1; i >= 0; --i) {
4681
82.0k
         dest[i*2+1] = 255;
4682
82.0k
         dest[i*2+0] = src[i];
4683
82.0k
      }
4684
178k
   } else {
4685
178k
      STBI_ASSERT(img_n == 3);
4686
3.81M
      for (i=x-1; i >= 0; --i) {
4687
3.63M
         dest[i*4+3] = 255;
4688
3.63M
         dest[i*4+2] = src[i*3+2];
4689
3.63M
         dest[i*4+1] = src[i*3+1];
4690
3.63M
         dest[i*4+0] = src[i*3+0];
4691
3.63M
      }
4692
178k
   }
4693
203k
}
4694
4695
// create the png data from post-deflated data
4696
static int stbi__create_png_image_raw(stbi__png *a, stbi_uc *raw, stbi__uint32 raw_len, int out_n, stbi__uint32 x, stbi__uint32 y, int depth, int color)
4697
1.11k
{
4698
1.11k
   int bytes = (depth == 16 ? 2 : 1);
4699
1.11k
   stbi__context *s = a->s;
4700
1.11k
   stbi__uint32 i,j,stride = x*out_n*bytes;
4701
1.11k
   stbi__uint32 img_len, img_width_bytes;
4702
1.11k
   stbi_uc *filter_buf;
4703
1.11k
   int all_ok = 1;
4704
1.11k
   int k;
4705
1.11k
   int img_n = s->img_n; // copy it into a local for later
4706
4707
1.11k
   int output_bytes = out_n*bytes;
4708
1.11k
   int filter_bytes = img_n*bytes;
4709
1.11k
   int width = x;
4710
4711
1.11k
   STBI_ASSERT(out_n == s->img_n || out_n == s->img_n+1);
4712
1.11k
   a->out = (stbi_uc *) stbi__malloc_mad3(x, y, output_bytes, 0); // extra bytes to write off the end into
4713
1.11k
   if (!a->out) return stbi__err("outofmem", "Out of memory");
4714
4715
   // note: error exits here don't need to clean up a->out individually,
4716
   // stbi__do_png always does on error.
4717
1.11k
   if (!stbi__mad3sizes_valid(img_n, x, depth, 7)) return stbi__err("too large", "Corrupt PNG");
4718
1.11k
   img_width_bytes = (((img_n * x * depth) + 7) >> 3);
4719
1.11k
   if (!stbi__mad2sizes_valid(img_width_bytes, y, img_width_bytes)) return stbi__err("too large", "Corrupt PNG");
4720
1.11k
   img_len = (img_width_bytes + 1) * y;
4721
4722
   // we used to check for exact match between raw_len and img_len on non-interlaced PNGs,
4723
   // but issue #276 reported a PNG in the wild that had extra data at the end (all zeros),
4724
   // so just check for raw_len < img_len always.
4725
1.11k
   if (raw_len < img_len) return stbi__err("not enough pixels","Corrupt PNG");
4726
4727
   // Allocate two scan lines worth of filter workspace buffer.
4728
953
   filter_buf = (stbi_uc *) stbi__malloc_mad2(img_width_bytes, 2, 0);
4729
953
   if (!filter_buf) return stbi__err("outofmem", "Out of memory");
4730
4731
   // Filtering for low-bit-depth images
4732
953
   if (depth < 8) {
4733
467
      filter_bytes = 1;
4734
467
      width = img_width_bytes;
4735
467
   }
4736
4737
876k
   for (j=0; j < y; ++j) {
4738
      // cur/prior filter buffers alternate
4739
875k
      stbi_uc *cur = filter_buf + (j & 1)*img_width_bytes;
4740
875k
      stbi_uc *prior = filter_buf + (~j & 1)*img_width_bytes;
4741
875k
      stbi_uc *dest = a->out + stride*j;
4742
875k
      int nk = width * filter_bytes;
4743
875k
      int filter = *raw++;
4744
4745
      // check filter type
4746
875k
      if (filter > 4) {
4747
41
         all_ok = stbi__err("invalid filter","Corrupt PNG");
4748
41
         break;
4749
41
      }
4750
4751
      // if first row, use special filter that doesn't sample previous row
4752
875k
      if (j == 0) filter = first_row_filter[filter];
4753
4754
      // perform actual filtering
4755
875k
      switch (filter) {
4756
250k
      case STBI__F_none:
4757
250k
         memcpy(cur, raw, nk);
4758
250k
         break;
4759
338k
      case STBI__F_sub:
4760
338k
         memcpy(cur, raw, filter_bytes);
4761
459M
         for (k = filter_bytes; k < nk; ++k)
4762
458M
            cur[k] = STBI__BYTECAST(raw[k] + cur[k-filter_bytes]);
4763
338k
         break;
4764
170k
      case STBI__F_up:
4765
418k
         for (k = 0; k < nk; ++k)
4766
247k
            cur[k] = STBI__BYTECAST(raw[k] + prior[k]);
4767
170k
         break;
4768
30.0k
      case STBI__F_avg:
4769
83.4k
         for (k = 0; k < filter_bytes; ++k)
4770
53.4k
            cur[k] = STBI__BYTECAST(raw[k] + (prior[k]>>1));
4771
55.3k
         for (k = filter_bytes; k < nk; ++k)
4772
25.3k
            cur[k] = STBI__BYTECAST(raw[k] + ((prior[k] + cur[k-filter_bytes])>>1));
4773
30.0k
         break;
4774
85.1k
      case STBI__F_paeth:
4775
219k
         for (k = 0; k < filter_bytes; ++k)
4776
134k
            cur[k] = STBI__BYTECAST(raw[k] + prior[k]); // prior[k] == stbi__paeth(0,prior[k],0)
4777
283k
         for (k = filter_bytes; k < nk; ++k)
4778
198k
            cur[k] = STBI__BYTECAST(raw[k] + stbi__paeth(cur[k-filter_bytes], prior[k], prior[k-filter_bytes]));
4779
85.1k
         break;
4780
201
      case STBI__F_avg_first:
4781
201
         memcpy(cur, raw, filter_bytes);
4782
297k
         for (k = filter_bytes; k < nk; ++k)
4783
296k
            cur[k] = STBI__BYTECAST(raw[k] + (cur[k-filter_bytes] >> 1));
4784
201
         break;
4785
875k
      }
4786
4787
875k
      raw += nk;
4788
4789
      // expand decoded bits in cur to dest, also adding an extra alpha channel if desired
4790
875k
      if (depth < 8) {
4791
677k
         stbi_uc scale = (color == 0) ? stbi__depth_scale_table[depth] : 1; // scale grayscale values to 0..255 range
4792
677k
         stbi_uc *in = cur;
4793
677k
         stbi_uc *out = dest;
4794
677k
         stbi_uc inb = 0;
4795
677k
         stbi__uint32 nsmp = x*img_n;
4796
4797
         // expand bits to bytes first
4798
677k
         if (depth == 4) {
4799
1.41M
            for (i=0; i < nsmp; ++i) {
4800
1.24M
               if ((i & 1) == 0) inb = *in++;
4801
1.24M
               *out++ = scale * (inb >> 4);
4802
1.24M
               inb <<= 4;
4803
1.24M
            }
4804
503k
         } else if (depth == 2) {
4805
33.6M
            for (i=0; i < nsmp; ++i) {
4806
33.6M
               if ((i & 3) == 0) inb = *in++;
4807
33.6M
               *out++ = scale * (inb >> 6);
4808
33.6M
               inb <<= 2;
4809
33.6M
            }
4810
496k
         } else {
4811
496k
            STBI_ASSERT(depth == 1);
4812
352M
            for (i=0; i < nsmp; ++i) {
4813
352M
               if ((i & 7) == 0) inb = *in++;
4814
352M
               *out++ = scale * (inb >> 7);
4815
352M
               inb <<= 1;
4816
352M
            }
4817
496k
         }
4818
4819
         // insert alpha=255 values if desired
4820
677k
         if (img_n != out_n)
4821
201k
            stbi__create_png_alpha_expand8(dest, dest, x, img_n);
4822
677k
      } else if (depth == 8) {
4823
55.5k
         if (img_n == out_n)
4824
53.4k
            memcpy(dest, cur, x*img_n);
4825
2.05k
         else
4826
2.05k
            stbi__create_png_alpha_expand8(dest, cur, x, img_n);
4827
142k
      } else if (depth == 16) {
4828
         // convert the image data from big-endian to platform-native
4829
142k
         stbi__uint16 *dest16 = (stbi__uint16*)dest;
4830
142k
         stbi__uint32 nsmp = x*img_n;
4831
4832
142k
         if (img_n == out_n) {
4833
224M
            for (i = 0; i < nsmp; ++i, ++dest16, cur += 2)
4834
224M
               *dest16 = (cur[0] << 8) | cur[1];
4835
72.8k
         } else {
4836
72.8k
            STBI_ASSERT(img_n+1 == out_n);
4837
72.8k
            if (img_n == 1) {
4838
142k
               for (i = 0; i < x; ++i, dest16 += 2, cur += 2) {
4839
71.3k
                  dest16[0] = (cur[0] << 8) | cur[1];
4840
71.3k
                  dest16[1] = 0xffff;
4841
71.3k
               }
4842
70.6k
            } else {
4843
2.17k
               STBI_ASSERT(img_n == 3);
4844
695k
               for (i = 0; i < x; ++i, dest16 += 4, cur += 6) {
4845
693k
                  dest16[0] = (cur[0] << 8) | cur[1];
4846
693k
                  dest16[1] = (cur[2] << 8) | cur[3];
4847
693k
                  dest16[2] = (cur[4] << 8) | cur[5];
4848
693k
                  dest16[3] = 0xffff;
4849
693k
               }
4850
2.17k
            }
4851
72.8k
         }
4852
142k
      }
4853
875k
   }
4854
4855
953
   STBI_FREE(filter_buf);
4856
953
   if (!all_ok) return 0;
4857
4858
912
   return 1;
4859
953
}
4860
4861
static int stbi__create_png_image(stbi__png *a, stbi_uc *image_data, stbi__uint32 image_data_len, int out_n, int depth, int color, int interlaced)
4862
510
{
4863
510
   int bytes = (depth == 16 ? 2 : 1);
4864
510
   int out_bytes = out_n * bytes;
4865
510
   stbi_uc *final;
4866
510
   int p;
4867
510
   if (!interlaced)
4868
247
      return stbi__create_png_image_raw(a, image_data, image_data_len, out_n, a->s->img_x, a->s->img_y, depth, color);
4869
4870
   // de-interlacing
4871
263
   final = (stbi_uc *) stbi__malloc_mad3(a->s->img_x, a->s->img_y, out_bytes, 0);
4872
263
   if (!final) return stbi__err("outofmem", "Out of memory");
4873
1.26k
   for (p=0; p < 7; ++p) {
4874
1.15k
      int xorig[] = { 0,4,0,2,0,1,0 };
4875
1.15k
      int yorig[] = { 0,0,4,0,2,0,1 };
4876
1.15k
      int xspc[]  = { 8,8,4,4,2,2,1 };
4877
1.15k
      int yspc[]  = { 8,8,8,4,4,2,2 };
4878
1.15k
      int i,j,x,y;
4879
      // pass1_x[4] = 0, pass1_x[5] = 1, pass1_x[12] = 1
4880
1.15k
      x = (a->s->img_x - xorig[p] + xspc[p]-1) / xspc[p];
4881
1.15k
      y = (a->s->img_y - yorig[p] + yspc[p]-1) / yspc[p];
4882
1.15k
      if (x && y) {
4883
869
         stbi__uint32 img_len = ((((a->s->img_n * x * depth) + 7) >> 3) + 1) * y;
4884
869
         if (!stbi__create_png_image_raw(a, image_data, image_data_len, out_n, x, y, depth, color)) {
4885
159
            STBI_FREE(final);
4886
159
            return 0;
4887
159
         }
4888
429k
         for (j=0; j < y; ++j) {
4889
64.9M
            for (i=0; i < x; ++i) {
4890
64.5M
               int out_y = j*yspc[p]+yorig[p];
4891
64.5M
               int out_x = i*xspc[p]+xorig[p];
4892
64.5M
               memcpy(final + out_y*a->s->img_x*out_bytes + out_x*out_bytes,
4893
64.5M
                      a->out + (j*x+i)*out_bytes, out_bytes);
4894
64.5M
            }
4895
428k
         }
4896
710
         STBI_FREE(a->out);
4897
710
         image_data += img_len;
4898
710
         image_data_len -= img_len;
4899
710
      }
4900
1.15k
   }
4901
104
   a->out = final;
4902
4903
104
   return 1;
4904
263
}
4905
4906
static int stbi__compute_transparency(stbi__png *z, stbi_uc tc[3], int out_n)
4907
44
{
4908
44
   stbi__context *s = z->s;
4909
44
   stbi__uint32 i, pixel_count = s->img_x * s->img_y;
4910
44
   stbi_uc *p = z->out;
4911
4912
   // compute color-based transparency, assuming we've
4913
   // already got 255 as the alpha value in the output
4914
44
   STBI_ASSERT(out_n == 2 || out_n == 4);
4915
4916
44
   if (out_n == 2) {
4917
19.9k
      for (i=0; i < pixel_count; ++i) {
4918
19.8k
         p[1] = (p[0] == tc[0] ? 0 : 255);
4919
19.8k
         p += 2;
4920
19.8k
      }
4921
27
   } else {
4922
3.27M
      for (i=0; i < pixel_count; ++i) {
4923
3.27M
         if (p[0] == tc[0] && p[1] == tc[1] && p[2] == tc[2])
4924
1.69M
            p[3] = 0;
4925
3.27M
         p += 4;
4926
3.27M
      }
4927
27
   }
4928
44
   return 1;
4929
44
}
4930
4931
static int stbi__compute_transparency16(stbi__png *z, stbi__uint16 tc[3], int out_n)
4932
52
{
4933
52
   stbi__context *s = z->s;
4934
52
   stbi__uint32 i, pixel_count = s->img_x * s->img_y;
4935
52
   stbi__uint16 *p = (stbi__uint16*) z->out;
4936
4937
   // compute color-based transparency, assuming we've
4938
   // already got 65535 as the alpha value in the output
4939
52
   STBI_ASSERT(out_n == 2 || out_n == 4);
4940
4941
52
   if (out_n == 2) {
4942
71.1k
      for (i = 0; i < pixel_count; ++i) {
4943
71.0k
         p[1] = (p[0] == tc[0] ? 0 : 65535);
4944
71.0k
         p += 2;
4945
71.0k
      }
4946
31
   } else {
4947
672k
      for (i = 0; i < pixel_count; ++i) {
4948
672k
         if (p[0] == tc[0] && p[1] == tc[1] && p[2] == tc[2])
4949
2.28k
            p[3] = 0;
4950
672k
         p += 4;
4951
672k
      }
4952
31
   }
4953
52
   return 1;
4954
52
}
4955
4956
static int stbi__expand_png_palette(stbi__png *a, stbi_uc *palette, int len, int pal_img_n)
4957
46
{
4958
46
   stbi__uint32 i, pixel_count = a->s->img_x * a->s->img_y;
4959
46
   stbi_uc *p, *temp_out, *orig = a->out;
4960
4961
46
   p = (stbi_uc *) stbi__malloc_mad2(pixel_count, pal_img_n, 0);
4962
46
   if (p == NULL) return stbi__err("outofmem", "Out of memory");
4963
4964
   // between here and free(out) below, exitting would leak
4965
46
   temp_out = p;
4966
4967
46
   if (pal_img_n == 3) {
4968
0
      for (i=0; i < pixel_count; ++i) {
4969
0
         int n = orig[i]*4;
4970
0
         p[0] = palette[n  ];
4971
0
         p[1] = palette[n+1];
4972
0
         p[2] = palette[n+2];
4973
0
         p += 3;
4974
0
      }
4975
46
   } else {
4976
11.4M
      for (i=0; i < pixel_count; ++i) {
4977
11.4M
         int n = orig[i]*4;
4978
11.4M
         p[0] = palette[n  ];
4979
11.4M
         p[1] = palette[n+1];
4980
11.4M
         p[2] = palette[n+2];
4981
11.4M
         p[3] = palette[n+3];
4982
11.4M
         p += 4;
4983
11.4M
      }
4984
46
   }
4985
46
   STBI_FREE(a->out);
4986
46
   a->out = temp_out;
4987
4988
46
   STBI_NOTUSED(len);
4989
4990
46
   return 1;
4991
46
}
4992
4993
static int stbi__unpremultiply_on_load_global = 0;
4994
static int stbi__de_iphone_flag_global = 0;
4995
4996
STBIDEF void stbi_set_unpremultiply_on_load(int flag_true_if_should_unpremultiply)
4997
0
{
4998
0
   stbi__unpremultiply_on_load_global = flag_true_if_should_unpremultiply;
4999
0
}
5000
5001
STBIDEF void stbi_convert_iphone_png_to_rgb(int flag_true_if_should_convert)
5002
0
{
5003
0
   stbi__de_iphone_flag_global = flag_true_if_should_convert;
5004
0
}
5005
5006
#ifndef STBI_THREAD_LOCAL
5007
#define stbi__unpremultiply_on_load  stbi__unpremultiply_on_load_global
5008
#define stbi__de_iphone_flag  stbi__de_iphone_flag_global
5009
#else
5010
static STBI_THREAD_LOCAL int stbi__unpremultiply_on_load_local, stbi__unpremultiply_on_load_set;
5011
static STBI_THREAD_LOCAL int stbi__de_iphone_flag_local, stbi__de_iphone_flag_set;
5012
5013
STBIDEF void stbi_set_unpremultiply_on_load_thread(int flag_true_if_should_unpremultiply)
5014
0
{
5015
0
   stbi__unpremultiply_on_load_local = flag_true_if_should_unpremultiply;
5016
0
   stbi__unpremultiply_on_load_set = 1;
5017
0
}
5018
5019
STBIDEF void stbi_convert_iphone_png_to_rgb_thread(int flag_true_if_should_convert)
5020
0
{
5021
0
   stbi__de_iphone_flag_local = flag_true_if_should_convert;
5022
0
   stbi__de_iphone_flag_set = 1;
5023
0
}
5024
5025
0
#define stbi__unpremultiply_on_load  (stbi__unpremultiply_on_load_set           \
5026
0
                                       ? stbi__unpremultiply_on_load_local      \
5027
0
                                       : stbi__unpremultiply_on_load_global)
5028
307
#define stbi__de_iphone_flag  (stbi__de_iphone_flag_set                         \
5029
307
                                ? stbi__de_iphone_flag_local                    \
5030
307
                                : stbi__de_iphone_flag_global)
5031
#endif // STBI_THREAD_LOCAL
5032
5033
static void stbi__de_iphone(stbi__png *z)
5034
0
{
5035
0
   stbi__context *s = z->s;
5036
0
   stbi__uint32 i, pixel_count = s->img_x * s->img_y;
5037
0
   stbi_uc *p = z->out;
5038
5039
0
   if (s->img_out_n == 3) {  // convert bgr to rgb
5040
0
      for (i=0; i < pixel_count; ++i) {
5041
0
         stbi_uc t = p[0];
5042
0
         p[0] = p[2];
5043
0
         p[2] = t;
5044
0
         p += 3;
5045
0
      }
5046
0
   } else {
5047
0
      STBI_ASSERT(s->img_out_n == 4);
5048
0
      if (stbi__unpremultiply_on_load) {
5049
         // convert bgr to rgb and unpremultiply
5050
0
         for (i=0; i < pixel_count; ++i) {
5051
0
            stbi_uc a = p[3];
5052
0
            stbi_uc t = p[0];
5053
0
            if (a) {
5054
0
               stbi_uc half = a / 2;
5055
0
               p[0] = (p[2] * 255 + half) / a;
5056
0
               p[1] = (p[1] * 255 + half) / a;
5057
0
               p[2] = ( t   * 255 + half) / a;
5058
0
            } else {
5059
0
               p[0] = p[2];
5060
0
               p[2] = t;
5061
0
            }
5062
0
            p += 4;
5063
0
         }
5064
0
      } else {
5065
         // convert bgr to rgb
5066
0
         for (i=0; i < pixel_count; ++i) {
5067
0
            stbi_uc t = p[0];
5068
0
            p[0] = p[2];
5069
0
            p[2] = t;
5070
0
            p += 4;
5071
0
         }
5072
0
      }
5073
0
   }
5074
0
}
5075
5076
13.2k
#define STBI__PNG_TYPE(a,b,c,d)  (((unsigned) (a) << 24) + ((unsigned) (b) << 16) + ((unsigned) (c) << 8) + (unsigned) (d))
5077
5078
static int stbi__parse_png_file(stbi__png *z, int scan, int req_comp)
5079
6.51k
{
5080
6.51k
   stbi_uc palette[1024], pal_img_n=0;
5081
6.51k
   stbi_uc has_trans=0, tc[3]={0};
5082
6.51k
   stbi__uint16 tc16[3];
5083
6.51k
   stbi__uint32 ioff=0, idata_limit=0, i, pal_len=0;
5084
6.51k
   int first=1,k,interlace=0, color=0, is_iphone=0;
5085
6.51k
   stbi__context *s = z->s;
5086
5087
6.51k
   z->expanded = NULL;
5088
6.51k
   z->idata = NULL;
5089
6.51k
   z->out = NULL;
5090
5091
6.51k
   if (!stbi__check_png_header(s)) return 0;
5092
5093
2.77k
   if (scan == STBI__SCAN_type) return 1;
5094
5095
15.0k
   for (;;) {
5096
15.0k
      stbi__pngchunk c = stbi__get_chunk_header(s);
5097
15.0k
      switch (c.type) {
5098
1.06k
         case STBI__PNG_TYPE('C','g','B','I'):
5099
1.06k
            is_iphone = 1;
5100
1.06k
            stbi__skip(s, c.length);
5101
1.06k
            break;
5102
2.54k
         case STBI__PNG_TYPE('I','H','D','R'): {
5103
2.54k
            int comp,filter;
5104
2.54k
            if (!first) return stbi__err("multiple IHDR","Corrupt PNG");
5105
2.53k
            first = 0;
5106
2.53k
            if (c.length != 13) return stbi__err("bad IHDR len","Corrupt PNG");
5107
2.52k
            s->img_x = stbi__get32be(s);
5108
2.52k
            s->img_y = stbi__get32be(s);
5109
2.52k
            if (s->img_y > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
5110
2.51k
            if (s->img_x > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
5111
2.49k
            z->depth = stbi__get8(s);  if (z->depth != 1 && z->depth != 2 && z->depth != 4 && z->depth != 8 && z->depth != 16)  return stbi__err("1/2/4/8/16-bit only","PNG not supported: 1/2/4/8/16-bit only");
5112
2.46k
            color = stbi__get8(s);  if (color > 6)         return stbi__err("bad ctype","Corrupt PNG");
5113
2.46k
            if (color == 3 && z->depth == 16)                  return stbi__err("bad ctype","Corrupt PNG");
5114
2.46k
            if (color == 3) pal_img_n = 3; else if (color & 1) return stbi__err("bad ctype","Corrupt PNG");
5115
2.46k
            comp  = stbi__get8(s);  if (comp) return stbi__err("bad comp method","Corrupt PNG");
5116
2.45k
            filter= stbi__get8(s);  if (filter) return stbi__err("bad filter method","Corrupt PNG");
5117
2.45k
            interlace = stbi__get8(s); if (interlace>1) return stbi__err("bad interlace method","Corrupt PNG");
5118
2.45k
            if (!s->img_x || !s->img_y) return stbi__err("0-pixel image","Corrupt PNG");
5119
2.45k
            if (!pal_img_n) {
5120
2.06k
               s->img_n = (color & 2 ? 3 : 1) + (color & 4 ? 1 : 0);
5121
2.06k
               if ((1 << 30) / s->img_x / s->img_n < s->img_y) return stbi__err("too large", "Image too large to decode");
5122
2.06k
            } else {
5123
               // if paletted, then pal_n is our final components, and
5124
               // img_n is # components to decompress/filter.
5125
385
               s->img_n = 1;
5126
385
               if ((1 << 30) / s->img_x / 4 < s->img_y) return stbi__err("too large","Corrupt PNG");
5127
385
            }
5128
            // even with SCAN_header, have to scan to see if we have a tRNS
5129
2.43k
            break;
5130
2.45k
         }
5131
5132
2.43k
         case STBI__PNG_TYPE('P','L','T','E'):  {
5133
1.56k
            if (first) return stbi__err("first not IHDR", "Corrupt PNG");
5134
1.55k
            if (c.length > 256*3) return stbi__err("invalid PLTE","Corrupt PNG");
5135
1.54k
            pal_len = c.length / 3;
5136
1.54k
            if (pal_len * 3 != c.length) return stbi__err("invalid PLTE","Corrupt PNG");
5137
21.0k
            for (i=0; i < pal_len; ++i) {
5138
19.5k
               palette[i*4+0] = stbi__get8(s);
5139
19.5k
               palette[i*4+1] = stbi__get8(s);
5140
19.5k
               palette[i*4+2] = stbi__get8(s);
5141
19.5k
               palette[i*4+3] = 255;
5142
19.5k
            }
5143
1.53k
            break;
5144
1.54k
         }
5145
5146
2.54k
         case STBI__PNG_TYPE('t','R','N','S'): {
5147
2.54k
            if (first) return stbi__err("first not IHDR", "Corrupt PNG");
5148
2.54k
            if (z->idata) return stbi__err("tRNS after IDAT","Corrupt PNG");
5149
2.54k
            if (pal_img_n) {
5150
1.12k
               if (scan == STBI__SCAN_header) { s->img_n = 4; return 1; }
5151
1.03k
               if (pal_len == 0) return stbi__err("tRNS before PLTE","Corrupt PNG");
5152
1.02k
               if (c.length > pal_len) return stbi__err("bad tRNS len","Corrupt PNG");
5153
1.00k
               pal_img_n = 4;
5154
4.37k
               for (i=0; i < c.length; ++i)
5155
3.37k
                  palette[i*4+3] = stbi__get8(s);
5156
1.41k
            } else {
5157
1.41k
               if (!(s->img_n & 1)) return stbi__err("tRNS with alpha","Corrupt PNG");
5158
1.41k
               if (c.length != (stbi__uint32) s->img_n*2) return stbi__err("bad tRNS len","Corrupt PNG");
5159
1.39k
               has_trans = 1;
5160
               // non-paletted with tRNS = constant alpha. if header-scanning, we can stop now.
5161
1.39k
               if (scan == STBI__SCAN_header) { ++s->img_n; return 1; }
5162
1.23k
               if (z->depth == 16) {
5163
2.10k
                  for (k = 0; k < s->img_n && k < 3; ++k) // extra loop test to suppress false GCC warning
5164
1.47k
                     tc16[k] = (stbi__uint16)stbi__get16be(s); // copy the values as-is
5165
629
               } else {
5166
1.96k
                  for (k = 0; k < s->img_n && k < 3; ++k)
5167
1.36k
                     tc[k] = (stbi_uc)(stbi__get16be(s) & 255) * stbi__depth_scale_table[z->depth]; // non 8-bit images will be larger
5168
605
               }
5169
1.23k
            }
5170
2.23k
            break;
5171
2.54k
         }
5172
5173
4.57k
         case STBI__PNG_TYPE('I','D','A','T'): {
5174
4.57k
            if (first) return stbi__err("first not IHDR", "Corrupt PNG");
5175
4.57k
            if (pal_img_n && !pal_len) return stbi__err("no PLTE","Corrupt PNG");
5176
4.57k
            if (scan == STBI__SCAN_header) {
5177
               // header scan definitely stops at first IDAT
5178
878
               if (pal_img_n)
5179
73
                  s->img_n = pal_img_n;
5180
878
               return 1;
5181
878
            }
5182
3.69k
            if (c.length > (1u << 30)) return stbi__err("IDAT size limit", "IDAT section larger than 2^30 bytes");
5183
3.68k
            if ((int)(ioff + c.length) < (int)ioff) return 0;
5184
3.68k
            if (ioff + c.length > idata_limit) {
5185
1.00k
               stbi__uint32 idata_limit_old = idata_limit;
5186
1.00k
               stbi_uc *p;
5187
1.00k
               if (idata_limit == 0) idata_limit = c.length > 4096 ? c.length : 4096;
5188
1.13k
               while (ioff + c.length > idata_limit)
5189
126
                  idata_limit *= 2;
5190
1.00k
               STBI_NOTUSED(idata_limit_old);
5191
1.00k
               p = (stbi_uc *) STBI_REALLOC_SIZED(z->idata, idata_limit_old, idata_limit); if (p == NULL) return stbi__err("outofmem", "Out of memory");
5192
1.00k
               z->idata = p;
5193
1.00k
            }
5194
3.68k
            if (!stbi__getn(s, z->idata+ioff,c.length)) return stbi__err("outofdata","Corrupt PNG");
5195
3.62k
            ioff += c.length;
5196
3.62k
            break;
5197
3.68k
         }
5198
5199
922
         case STBI__PNG_TYPE('I','E','N','D'): {
5200
922
            stbi__uint32 raw_len, bpl;
5201
922
            if (first) return stbi__err("first not IHDR", "Corrupt PNG");
5202
921
            if (scan != STBI__SCAN_load) return 1;
5203
911
            if (z->idata == NULL) return stbi__err("no IDAT","Corrupt PNG");
5204
            // initial guess for decoded data size to avoid unnecessary reallocs
5205
901
            bpl = (s->img_x * z->depth + 7) / 8; // bytes per line, per component
5206
901
            raw_len = bpl * s->img_y * s->img_n /* pixels */ + s->img_y /* filter mode per row */;
5207
901
            z->expanded = (stbi_uc *) stbi_zlib_decode_malloc_guesssize_headerflag((char *) z->idata, ioff, raw_len, (int *) &raw_len, !is_iphone);
5208
901
            if (z->expanded == NULL) return 0; // zlib should set error
5209
510
            STBI_FREE(z->idata); z->idata = NULL;
5210
510
            if ((req_comp == s->img_n+1 && req_comp != 3 && !pal_img_n) || has_trans)
5211
192
               s->img_out_n = s->img_n+1;
5212
318
            else
5213
318
               s->img_out_n = s->img_n;
5214
510
            if (!stbi__create_png_image(z, z->expanded, raw_len, s->img_out_n, z->depth, color, interlace)) return 0;
5215
306
            if (has_trans) {
5216
96
               if (z->depth == 16) {
5217
52
                  if (!stbi__compute_transparency16(z, tc16, s->img_out_n)) return 0;
5218
52
               } else {
5219
44
                  if (!stbi__compute_transparency(z, tc, s->img_out_n)) return 0;
5220
44
               }
5221
96
            }
5222
306
            if (is_iphone && stbi__de_iphone_flag && s->img_out_n > 2)
5223
0
               stbi__de_iphone(z);
5224
306
            if (pal_img_n) {
5225
               // pal_img_n == 3 or 4
5226
46
               s->img_n = pal_img_n; // record the actual colors we had
5227
46
               s->img_out_n = pal_img_n;
5228
46
               if (req_comp >= 3) s->img_out_n = req_comp;
5229
46
               if (!stbi__expand_png_palette(z, palette, pal_len, s->img_out_n))
5230
0
                  return 0;
5231
260
            } else if (has_trans) {
5232
               // non-paletted image with tRNS -> source image has (constant) alpha
5233
96
               ++s->img_n;
5234
96
            }
5235
306
            STBI_FREE(z->expanded); z->expanded = NULL;
5236
            // end of PNG chunk, read and skip CRC
5237
306
            stbi__get32be(s);
5238
306
            return 1;
5239
306
         }
5240
5241
1.87k
         default:
5242
            // if critical, fail
5243
1.87k
            if (first) return stbi__err("first not IHDR", "Corrupt PNG");
5244
1.64k
            if ((c.type & (1 << 29)) == 0) {
5245
231
               #ifndef STBI_NO_FAILURE_STRINGS
5246
               // not threadsafe
5247
231
               static char invalid_chunk[] = "XXXX PNG chunk not known";
5248
231
               invalid_chunk[0] = STBI__BYTECAST(c.type >> 24);
5249
231
               invalid_chunk[1] = STBI__BYTECAST(c.type >> 16);
5250
231
               invalid_chunk[2] = STBI__BYTECAST(c.type >>  8);
5251
231
               invalid_chunk[3] = STBI__BYTECAST(c.type >>  0);
5252
231
               #endif
5253
231
               return stbi__err(invalid_chunk, "PNG not supported: unknown PNG chunk type");
5254
231
            }
5255
1.40k
            stbi__skip(s, c.length);
5256
1.40k
            break;
5257
15.0k
      }
5258
      // end of PNG chunk, read and skip CRC
5259
12.3k
      stbi__get32be(s);
5260
12.3k
   }
5261
2.77k
}
5262
5263
static void *stbi__do_png(stbi__png *p, int *x, int *y, int *n, int req_comp, stbi__result_info *ri)
5264
1.13k
{
5265
1.13k
   void *result=NULL;
5266
1.13k
   if (req_comp < 0 || req_comp > 4) return stbi__errpuc("bad req_comp", "Internal error");
5267
1.13k
   if (stbi__parse_png_file(p, STBI__SCAN_load, req_comp)) {
5268
306
      if (p->depth <= 8)
5269
182
         ri->bits_per_channel = 8;
5270
124
      else if (p->depth == 16)
5271
124
         ri->bits_per_channel = 16;
5272
0
      else
5273
0
         return stbi__errpuc("bad bits_per_channel", "PNG not supported: unsupported color depth");
5274
306
      result = p->out;
5275
306
      p->out = NULL;
5276
306
      if (req_comp && req_comp != p->s->img_out_n) {
5277
169
         if (ri->bits_per_channel == 8)
5278
85
            result = stbi__convert_format((unsigned char *) result, p->s->img_out_n, req_comp, p->s->img_x, p->s->img_y);
5279
84
         else
5280
84
            result = stbi__convert_format16((stbi__uint16 *) result, p->s->img_out_n, req_comp, p->s->img_x, p->s->img_y);
5281
169
         p->s->img_out_n = req_comp;
5282
169
         if (result == NULL) return result;
5283
169
      }
5284
306
      *x = p->s->img_x;
5285
306
      *y = p->s->img_y;
5286
306
      if (n) *n = p->s->img_n;
5287
306
   }
5288
1.13k
   STBI_FREE(p->out);      p->out      = NULL;
5289
1.13k
   STBI_FREE(p->expanded); p->expanded = NULL;
5290
1.13k
   STBI_FREE(p->idata);    p->idata    = NULL;
5291
5292
1.13k
   return result;
5293
1.13k
}
5294
5295
static void *stbi__png_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
5296
1.13k
{
5297
1.13k
   stbi__png p;
5298
1.13k
   p.s = s;
5299
1.13k
   return stbi__do_png(&p, x,y,comp,req_comp, ri);
5300
1.13k
}
5301
5302
static int stbi__png_test(stbi__context *s)
5303
4.85k
{
5304
4.85k
   int r;
5305
4.85k
   r = stbi__check_png_header(s);
5306
4.85k
   stbi__rewind(s);
5307
4.85k
   return r;
5308
4.85k
}
5309
5310
static int stbi__png_info_raw(stbi__png *p, int *x, int *y, int *comp)
5311
5.38k
{
5312
5.38k
   if (!stbi__parse_png_file(p, STBI__SCAN_header, 0)) {
5313
4.24k
      stbi__rewind( p->s );
5314
4.24k
      return 0;
5315
4.24k
   }
5316
1.13k
   if (x) *x = p->s->img_x;
5317
1.13k
   if (y) *y = p->s->img_y;
5318
1.13k
   if (comp) *comp = p->s->img_n;
5319
1.13k
   return 1;
5320
5.38k
}
5321
5322
static int stbi__png_info(stbi__context *s, int *x, int *y, int *comp)
5323
5.38k
{
5324
5.38k
   stbi__png p;
5325
5.38k
   p.s = s;
5326
5.38k
   return stbi__png_info_raw(&p, x, y, comp);
5327
5.38k
}
5328
5329
static int stbi__png_is16(stbi__context *s)
5330
0
{
5331
0
   stbi__png p;
5332
0
   p.s = s;
5333
0
   if (!stbi__png_info_raw(&p, NULL, NULL, NULL))
5334
0
     return 0;
5335
0
   if (p.depth != 16) {
5336
0
      stbi__rewind(p.s);
5337
0
      return 0;
5338
0
   }
5339
0
   return 1;
5340
0
}
5341
#endif
5342
5343
// Microsoft/Windows BMP image
5344
5345
#ifndef STBI_NO_BMP
5346
static int stbi__bmp_test_raw(stbi__context *s)
5347
3.72k
{
5348
3.72k
   int r;
5349
3.72k
   int sz;
5350
3.72k
   if (stbi__get8(s) != 'B') return 0;
5351
848
   if (stbi__get8(s) != 'M') return 0;
5352
840
   stbi__get32le(s); // discard filesize
5353
840
   stbi__get16le(s); // discard reserved
5354
840
   stbi__get16le(s); // discard reserved
5355
840
   stbi__get32le(s); // discard data offset
5356
840
   sz = stbi__get32le(s);
5357
840
   r = (sz == 12 || sz == 40 || sz == 56 || sz == 108 || sz == 124);
5358
840
   return r;
5359
848
}
5360
5361
static int stbi__bmp_test(stbi__context *s)
5362
3.72k
{
5363
3.72k
   int r = stbi__bmp_test_raw(s);
5364
3.72k
   stbi__rewind(s);
5365
3.72k
   return r;
5366
3.72k
}
5367
5368
5369
// returns 0..31 for the highest set bit
5370
static int stbi__high_bit(unsigned int z)
5371
976
{
5372
976
   int n=0;
5373
976
   if (z == 0) return -1;
5374
798
   if (z >= 0x10000) { n += 16; z >>= 16; }
5375
798
   if (z >= 0x00100) { n +=  8; z >>=  8; }
5376
798
   if (z >= 0x00010) { n +=  4; z >>=  4; }
5377
798
   if (z >= 0x00004) { n +=  2; z >>=  2; }
5378
798
   if (z >= 0x00002) { n +=  1;/* >>=  1;*/ }
5379
798
   return n;
5380
976
}
5381
5382
static int stbi__bitcount(unsigned int a)
5383
976
{
5384
976
   a = (a & 0x55555555) + ((a >>  1) & 0x55555555); // max 2
5385
976
   a = (a & 0x33333333) + ((a >>  2) & 0x33333333); // max 4
5386
976
   a = (a + (a >> 4)) & 0x0f0f0f0f; // max 8 per 4, now 8 bits
5387
976
   a = (a + (a >> 8)); // max 16 per 8 bits
5388
976
   a = (a + (a >> 16)); // max 32 per 8 bits
5389
976
   return a & 0xff;
5390
976
}
5391
5392
// extract an arbitrarily-aligned N-bit value (N=bits)
5393
// from v, and then make it 8-bits long and fractionally
5394
// extend it to full full range.
5395
static int stbi__shiftsigned(unsigned int v, int shift, int bits)
5396
840M
{
5397
840M
   static unsigned int mul_table[9] = {
5398
840M
      0,
5399
840M
      0xff/*0b11111111*/, 0x55/*0b01010101*/, 0x49/*0b01001001*/, 0x11/*0b00010001*/,
5400
840M
      0x21/*0b00100001*/, 0x41/*0b01000001*/, 0x81/*0b10000001*/, 0x01/*0b00000001*/,
5401
840M
   };
5402
840M
   static unsigned int shift_table[9] = {
5403
840M
      0, 0,0,1,0,2,4,6,0,
5404
840M
   };
5405
840M
   if (shift < 0)
5406
204M
      v <<= -shift;
5407
635M
   else
5408
635M
      v >>= shift;
5409
840M
   STBI_ASSERT(v < 256);
5410
840M
   v >>= (8-bits);
5411
840M
   STBI_ASSERT(bits >= 0 && bits <= 8);
5412
840M
   return (int) ((unsigned) v * mul_table[bits]) >> shift_table[bits];
5413
840M
}
5414
5415
typedef struct
5416
{
5417
   int bpp, offset, hsz;
5418
   unsigned int mr,mg,mb,ma, all_a;
5419
   int extra_read;
5420
} stbi__bmp_data;
5421
5422
static int stbi__bmp_set_mask_defaults(stbi__bmp_data *info, int compress)
5423
878
{
5424
   // BI_BITFIELDS specifies masks explicitly, don't override
5425
878
   if (compress == 3)
5426
0
      return 1;
5427
5428
878
   if (compress == 0) {
5429
252
      if (info->bpp == 16) {
5430
57
         info->mr = 31u << 10;
5431
57
         info->mg = 31u <<  5;
5432
57
         info->mb = 31u <<  0;
5433
195
      } else if (info->bpp == 32) {
5434
65
         info->mr = 0xffu << 16;
5435
65
         info->mg = 0xffu <<  8;
5436
65
         info->mb = 0xffu <<  0;
5437
65
         info->ma = 0xffu << 24;
5438
65
         info->all_a = 0; // if all_a is 0 at end, then we loaded alpha channel but it was all 0
5439
130
      } else {
5440
         // otherwise, use defaults, which is all-0
5441
130
         info->mr = info->mg = info->mb = info->ma = 0;
5442
130
      }
5443
252
      return 1;
5444
252
   }
5445
626
   return 0; // error
5446
878
}
5447
5448
static void *stbi__bmp_parse_header(stbi__context *s, stbi__bmp_data *info)
5449
4.70k
{
5450
4.70k
   int hsz;
5451
4.70k
   if (stbi__get8(s) != 'B' || stbi__get8(s) != 'M') return stbi__errpuc("not BMP", "Corrupt BMP");
5452
1.88k
   stbi__get32le(s); // discard filesize
5453
1.88k
   stbi__get16le(s); // discard reserved
5454
1.88k
   stbi__get16le(s); // discard reserved
5455
1.88k
   info->offset = stbi__get32le(s);
5456
1.88k
   info->hsz = hsz = stbi__get32le(s);
5457
1.88k
   info->mr = info->mg = info->mb = info->ma = 0;
5458
1.88k
   info->extra_read = 14;
5459
5460
1.88k
   if (info->offset < 0) return stbi__errpuc("bad BMP", "bad BMP");
5461
5462
1.86k
   if (hsz != 12 && hsz != 40 && hsz != 56 && hsz != 108 && hsz != 124) return stbi__errpuc("unknown BMP", "BMP type not supported: unknown");
5463
1.78k
   if (hsz == 12) {
5464
545
      s->img_x = stbi__get16le(s);
5465
545
      s->img_y = stbi__get16le(s);
5466
1.23k
   } else {
5467
1.23k
      s->img_x = stbi__get32le(s);
5468
1.23k
      s->img_y = stbi__get32le(s);
5469
1.23k
   }
5470
1.78k
   if (stbi__get16le(s) != 1) return stbi__errpuc("bad BMP", "bad BMP");
5471
1.76k
   info->bpp = stbi__get16le(s);
5472
1.76k
   if (hsz != 12) {
5473
1.23k
      int compress = stbi__get32le(s);
5474
1.23k
      if (compress == 1 || compress == 2) return stbi__errpuc("BMP RLE", "BMP type not supported: RLE");
5475
1.23k
      if (compress >= 4) return stbi__errpuc("BMP JPEG/PNG", "BMP type not supported: unsupported compression"); // this includes PNG/JPEG modes
5476
1.21k
      if (compress == 3 && info->bpp != 16 && info->bpp != 32) return stbi__errpuc("bad BMP", "bad BMP"); // bitfields requires 16 or 32 bits/pixel
5477
1.20k
      stbi__get32le(s); // discard sizeof
5478
1.20k
      stbi__get32le(s); // discard hres
5479
1.20k
      stbi__get32le(s); // discard vres
5480
1.20k
      stbi__get32le(s); // discard colorsused
5481
1.20k
      stbi__get32le(s); // discard max important
5482
1.20k
      if (hsz == 40 || hsz == 56) {
5483
408
         if (hsz == 56) {
5484
13
            stbi__get32le(s);
5485
13
            stbi__get32le(s);
5486
13
            stbi__get32le(s);
5487
13
            stbi__get32le(s);
5488
13
         }
5489
408
         if (info->bpp == 16 || info->bpp == 32) {
5490
339
            if (compress == 0) {
5491
91
               stbi__bmp_set_mask_defaults(info, compress);
5492
248
            } else if (compress == 3) {
5493
220
               info->mr = stbi__get32le(s);
5494
220
               info->mg = stbi__get32le(s);
5495
220
               info->mb = stbi__get32le(s);
5496
220
               info->extra_read += 12;
5497
               // not documented, but generated by photoshop and handled by mspaint
5498
220
               if (info->mr == info->mg && info->mg == info->mb) {
5499
                  // ?!?!?
5500
1
                  return stbi__errpuc("bad BMP", "bad BMP");
5501
1
               }
5502
220
            } else
5503
28
               return stbi__errpuc("bad BMP", "bad BMP");
5504
339
         }
5505
799
      } else {
5506
         // V4/V5 header
5507
799
         int i;
5508
799
         if (hsz != 108 && hsz != 124)
5509
0
            return stbi__errpuc("bad BMP", "bad BMP");
5510
799
         info->mr = stbi__get32le(s);
5511
799
         info->mg = stbi__get32le(s);
5512
799
         info->mb = stbi__get32le(s);
5513
799
         info->ma = stbi__get32le(s);
5514
799
         if (compress != 3) // override mr/mg/mb unless in BI_BITFIELDS mode, as per docs
5515
787
            stbi__bmp_set_mask_defaults(info, compress);
5516
799
         stbi__get32le(s); // discard color space
5517
10.3k
         for (i=0; i < 12; ++i)
5518
9.58k
            stbi__get32le(s); // discard color space parameters
5519
799
         if (hsz == 124) {
5520
677
            stbi__get32le(s); // discard rendering intent
5521
677
            stbi__get32le(s); // discard offset of profile data
5522
677
            stbi__get32le(s); // discard size of profile data
5523
677
            stbi__get32le(s); // discard reserved
5524
677
         }
5525
799
      }
5526
1.20k
   }
5527
1.71k
   return (void *) 1;
5528
1.76k
}
5529
5530
5531
static void *stbi__bmp_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
5532
840
{
5533
840
   stbi_uc *out;
5534
840
   unsigned int mr=0,mg=0,mb=0,ma=0, all_a;
5535
840
   stbi_uc pal[256][4];
5536
840
   int psize=0,i,j,width;
5537
840
   int flip_vertically, pad, target;
5538
840
   stbi__bmp_data info;
5539
840
   STBI_NOTUSED(ri);
5540
5541
840
   info.all_a = 255;
5542
840
   if (stbi__bmp_parse_header(s, &info) == NULL)
5543
0
      return NULL; // error code already set
5544
5545
840
   flip_vertically = ((int) s->img_y) > 0;
5546
840
   s->img_y = abs((int) s->img_y);
5547
5548
840
   if (s->img_y > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
5549
824
   if (s->img_x > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
5550
5551
786
   mr = info.mr;
5552
786
   mg = info.mg;
5553
786
   mb = info.mb;
5554
786
   ma = info.ma;
5555
786
   all_a = info.all_a;
5556
5557
786
   if (info.hsz == 12) {
5558
268
      if (info.bpp < 24)
5559
188
         psize = (info.offset - info.extra_read - 24) / 3;
5560
518
   } else {
5561
518
      if (info.bpp < 16)
5562
51
         psize = (info.offset - info.extra_read - info.hsz) >> 2;
5563
518
   }
5564
786
   if (psize == 0) {
5565
      // accept some number of extra bytes after the header, but if the offset points either to before
5566
      // the header ends or implies a large amount of extra data, reject the file as malformed
5567
552
      int bytes_read_so_far = s->callback_already_read + (int)(s->img_buffer - s->img_buffer_original);
5568
552
      int header_limit = 1024; // max we actually read is below 256 bytes currently.
5569
552
      int extra_data_limit = 256*4; // what ordinarily goes here is a palette; 256 entries*4 bytes is its max size.
5570
552
      if (bytes_read_so_far <= 0 || bytes_read_so_far > header_limit) {
5571
0
         return stbi__errpuc("bad header", "Corrupt BMP");
5572
0
      }
5573
      // we established that bytes_read_so_far is positive and sensible.
5574
      // the first half of this test rejects offsets that are either too small positives, or
5575
      // negative, and guarantees that info.offset >= bytes_read_so_far > 0. this in turn
5576
      // ensures the number computed in the second half of the test can't overflow.
5577
552
      if (info.offset < bytes_read_so_far || info.offset - bytes_read_so_far > extra_data_limit) {
5578
59
         return stbi__errpuc("bad offset", "Corrupt BMP");
5579
493
      } else {
5580
493
         stbi__skip(s, info.offset - bytes_read_so_far);
5581
493
      }
5582
552
   }
5583
5584
727
   if (info.bpp == 24 && ma == 0xff000000)
5585
1
      s->img_n = 3;
5586
726
   else
5587
726
      s->img_n = ma ? 4 : 3;
5588
727
   if (req_comp && req_comp >= 3) // we can directly decode 3 or 4
5589
727
      target = req_comp;
5590
0
   else
5591
0
      target = s->img_n; // if they want monochrome, we'll post-convert
5592
5593
   // sanity-check size
5594
727
   if (!stbi__mad3sizes_valid(target, s->img_x, s->img_y, 0))
5595
0
      return stbi__errpuc("too large", "Corrupt BMP");
5596
5597
727
   out = (stbi_uc *) stbi__malloc_mad3(target, s->img_x, s->img_y, 0);
5598
727
   if (!out) return stbi__errpuc("outofmem", "Out of memory");
5599
727
   if (info.bpp < 16) {
5600
209
      int z=0;
5601
209
      if (psize == 0 || psize > 256) { STBI_FREE(out); return stbi__errpuc("invalid", "Corrupt BMP"); }
5602
10.4k
      for (i=0; i < psize; ++i) {
5603
10.3k
         pal[i][2] = stbi__get8(s);
5604
10.3k
         pal[i][1] = stbi__get8(s);
5605
10.3k
         pal[i][0] = stbi__get8(s);
5606
10.3k
         if (info.hsz != 12) stbi__get8(s);
5607
10.3k
         pal[i][3] = 255;
5608
10.3k
      }
5609
164
      stbi__skip(s, info.offset - info.extra_read - info.hsz - psize * (info.hsz == 12 ? 3 : 4));
5610
164
      if (info.bpp == 1) width = (s->img_x + 7) >> 3;
5611
108
      else if (info.bpp == 4) width = (s->img_x + 1) >> 1;
5612
68
      else if (info.bpp == 8) width = s->img_x;
5613
31
      else { STBI_FREE(out); return stbi__errpuc("bad bpp", "Corrupt BMP"); }
5614
133
      pad = (-width)&3;
5615
133
      if (info.bpp == 1) {
5616
69.5M
         for (j=0; j < (int) s->img_y; ++j) {
5617
69.5M
            int bit_offset = 7, v = stbi__get8(s);
5618
149M
            for (i=0; i < (int) s->img_x; ++i) {
5619
98.5M
               int color = (v>>bit_offset)&0x1;
5620
98.5M
               out[z++] = pal[color][0];
5621
98.5M
               out[z++] = pal[color][1];
5622
98.5M
               out[z++] = pal[color][2];
5623
98.5M
               if (target == 4) out[z++] = 255;
5624
98.5M
               if (i+1 == (int) s->img_x) break;
5625
79.6M
               if((--bit_offset) < 0) {
5626
9.63M
                  bit_offset = 7;
5627
9.63M
                  v = stbi__get8(s);
5628
9.63M
               }
5629
79.6M
            }
5630
69.5M
            stbi__skip(s, pad);
5631
69.5M
         }
5632
77
      } else {
5633
10.5M
         for (j=0; j < (int) s->img_y; ++j) {
5634
128M
            for (i=0; i < (int) s->img_x; i += 2) {
5635
118M
               int v=stbi__get8(s),v2=0;
5636
118M
               if (info.bpp == 4) {
5637
68.0M
                  v2 = v & 15;
5638
68.0M
                  v >>= 4;
5639
68.0M
               }
5640
118M
               out[z++] = pal[v][0];
5641
118M
               out[z++] = pal[v][1];
5642
118M
               out[z++] = pal[v][2];
5643
118M
               if (target == 4) out[z++] = 255;
5644
118M
               if (i+1 == (int) s->img_x) break;
5645
118M
               v = (info.bpp == 8) ? stbi__get8(s) : v2;
5646
118M
               out[z++] = pal[v][0];
5647
118M
               out[z++] = pal[v][1];
5648
118M
               out[z++] = pal[v][2];
5649
118M
               if (target == 4) out[z++] = 255;
5650
118M
            }
5651
10.5M
            stbi__skip(s, pad);
5652
10.5M
         }
5653
77
      }
5654
518
   } else {
5655
518
      int rshift=0,gshift=0,bshift=0,ashift=0,rcount=0,gcount=0,bcount=0,acount=0;
5656
518
      int z = 0;
5657
518
      int easy=0;
5658
518
      stbi__skip(s, info.offset - info.extra_read - info.hsz);
5659
518
      if (info.bpp == 24) width = 3 * s->img_x;
5660
426
      else if (info.bpp == 16) width = 2*s->img_x;
5661
381
      else /* bpp = 32 and pad = 0 */ width=0;
5662
518
      pad = (-width) & 3;
5663
518
      if (info.bpp == 24) {
5664
92
         easy = 1;
5665
426
      } else if (info.bpp == 32) {
5666
244
         if (mb == 0xff && mg == 0xff00 && mr == 0x00ff0000 && ma == 0xff000000)
5667
29
            easy = 2;
5668
244
      }
5669
518
      if (!easy) {
5670
397
         if (!mr || !mg || !mb) { STBI_FREE(out); return stbi__errpuc("bad masks", "Corrupt BMP"); }
5671
         // right shift amt to put high bit in position #7
5672
244
         rshift = stbi__high_bit(mr)-7; rcount = stbi__bitcount(mr);
5673
244
         gshift = stbi__high_bit(mg)-7; gcount = stbi__bitcount(mg);
5674
244
         bshift = stbi__high_bit(mb)-7; bcount = stbi__bitcount(mb);
5675
244
         ashift = stbi__high_bit(ma)-7; acount = stbi__bitcount(ma);
5676
244
         if (rcount > 8 || gcount > 8 || bcount > 8 || acount > 8) { STBI_FREE(out); return stbi__errpuc("bad masks", "Corrupt BMP"); }
5677
244
      }
5678
319M
      for (j=0; j < (int) s->img_y; ++j) {
5679
319M
         if (easy) {
5680
721M
            for (i=0; i < (int) s->img_x; ++i) {
5681
456M
               unsigned char a;
5682
456M
               out[z+2] = stbi__get8(s);
5683
456M
               out[z+1] = stbi__get8(s);
5684
456M
               out[z+0] = stbi__get8(s);
5685
456M
               z += 3;
5686
456M
               a = (easy == 2 ? stbi__get8(s) : 255);
5687
456M
               all_a |= a;
5688
456M
               if (target == 4) out[z++] = a;
5689
456M
            }
5690
265M
         } else {
5691
54.2M
            int bpp = info.bpp;
5692
319M
            for (i=0; i < (int) s->img_x; ++i) {
5693
265M
               stbi__uint32 v = (bpp == 16 ? (stbi__uint32) stbi__get16le(s) : stbi__get32le(s));
5694
265M
               unsigned int a;
5695
265M
               out[z++] = STBI__BYTECAST(stbi__shiftsigned(v & mr, rshift, rcount));
5696
265M
               out[z++] = STBI__BYTECAST(stbi__shiftsigned(v & mg, gshift, gcount));
5697
265M
               out[z++] = STBI__BYTECAST(stbi__shiftsigned(v & mb, bshift, bcount));
5698
265M
               a = (ma ? stbi__shiftsigned(v & ma, ashift, acount) : 255);
5699
265M
               all_a |= a;
5700
265M
               if (target == 4) out[z++] = STBI__BYTECAST(a);
5701
265M
            }
5702
54.2M
         }
5703
319M
         stbi__skip(s, pad);
5704
319M
      }
5705
206
   }
5706
5707
   // if alpha channel is all 0s, replace with all 255s
5708
339
   if (target == 4 && all_a == 0)
5709
185M
      for (i=4*s->img_x*s->img_y-1; i >= 0; i -= 4)
5710
185M
         out[i] = 255;
5711
5712
339
   if (flip_vertically) {
5713
329
      stbi_uc t;
5714
199M
      for (j=0; j < (int) s->img_y>>1; ++j) {
5715
199M
         stbi_uc *p1 = out +      j     *s->img_x*target;
5716
199M
         stbi_uc *p2 = out + (s->img_y-1-j)*s->img_x*target;
5717
1.61G
         for (i=0; i < (int) s->img_x*target; ++i) {
5718
1.41G
            t = p1[i]; p1[i] = p2[i]; p2[i] = t;
5719
1.41G
         }
5720
199M
      }
5721
329
   }
5722
5723
339
   if (req_comp && req_comp != target) {
5724
0
      out = stbi__convert_format(out, target, req_comp, s->img_x, s->img_y);
5725
0
      if (out == NULL) return out; // stbi__convert_format frees input on failure
5726
0
   }
5727
5728
339
   *x = s->img_x;
5729
339
   *y = s->img_y;
5730
339
   if (comp) *comp = s->img_n;
5731
339
   return out;
5732
339
}
5733
#endif
5734
5735
// Targa Truevision - TGA
5736
// by Jonathan Dummer
5737
#ifndef STBI_NO_TGA
5738
// returns STBI_rgb or whatever, 0 on error
5739
static int stbi__tga_get_comp(int bits_per_pixel, int is_grey, int* is_rgb16)
5740
423
{
5741
   // only RGB or RGBA (incl. 16bit) or grey allowed
5742
423
   if (is_rgb16) *is_rgb16 = 0;
5743
423
   switch(bits_per_pixel) {
5744
120
      case 8:  return STBI_grey;
5745
134
      case 16: if(is_grey) return STBI_grey_alpha;
5746
               // fallthrough
5747
122
      case 15: if(is_rgb16) *is_rgb16 = 1;
5748
122
               return STBI_rgb;
5749
56
      case 24: // fallthrough
5750
120
      case 32: return bits_per_pixel/8;
5751
11
      default: return 0;
5752
423
   }
5753
423
}
5754
5755
static int stbi__tga_info(stbi__context *s, int *x, int *y, int *comp)
5756
1.96k
{
5757
1.96k
    int tga_w, tga_h, tga_comp, tga_image_type, tga_bits_per_pixel, tga_colormap_bpp;
5758
1.96k
    int sz, tga_colormap_type;
5759
1.96k
    stbi__get8(s);                   // discard Offset
5760
1.96k
    tga_colormap_type = stbi__get8(s); // colormap type
5761
1.96k
    if( tga_colormap_type > 1 ) {
5762
1.63k
        stbi__rewind(s);
5763
1.63k
        return 0;      // only RGB or indexed allowed
5764
1.63k
    }
5765
336
    tga_image_type = stbi__get8(s); // image type
5766
336
    if ( tga_colormap_type == 1 ) { // colormapped (paletted) image
5767
132
        if (tga_image_type != 1 && tga_image_type != 9) {
5768
14
            stbi__rewind(s);
5769
14
            return 0;
5770
14
        }
5771
118
        stbi__skip(s,4);       // skip index of first colormap entry and number of entries
5772
118
        sz = stbi__get8(s);    //   check bits per palette color entry
5773
118
        if ( (sz != 8) && (sz != 15) && (sz != 16) && (sz != 24) && (sz != 32) ) {
5774
15
            stbi__rewind(s);
5775
15
            return 0;
5776
15
        }
5777
103
        stbi__skip(s,4);       // skip image x and y origin
5778
103
        tga_colormap_bpp = sz;
5779
204
    } else { // "normal" image w/o colormap - only RGB or grey allowed, +/- RLE
5780
204
        if ( (tga_image_type != 2) && (tga_image_type != 3) && (tga_image_type != 10) && (tga_image_type != 11) ) {
5781
56
            stbi__rewind(s);
5782
56
            return 0; // only RGB or grey allowed, +/- RLE
5783
56
        }
5784
148
        stbi__skip(s,9); // skip colormap specification and image x/y origin
5785
148
        tga_colormap_bpp = 0;
5786
148
    }
5787
251
    tga_w = stbi__get16le(s);
5788
251
    if( tga_w < 1 ) {
5789
9
        stbi__rewind(s);
5790
9
        return 0;   // test width
5791
9
    }
5792
242
    tga_h = stbi__get16le(s);
5793
242
    if( tga_h < 1 ) {
5794
11
        stbi__rewind(s);
5795
11
        return 0;   // test height
5796
11
    }
5797
231
    tga_bits_per_pixel = stbi__get8(s); // bits per pixel
5798
231
    stbi__get8(s); // ignore alpha bits
5799
231
    if (tga_colormap_bpp != 0) {
5800
96
        if((tga_bits_per_pixel != 8) && (tga_bits_per_pixel != 16)) {
5801
            // when using a colormap, tga_bits_per_pixel is the size of the indexes
5802
            // I don't think anything but 8 or 16bit indexes makes sense
5803
14
            stbi__rewind(s);
5804
14
            return 0;
5805
14
        }
5806
82
        tga_comp = stbi__tga_get_comp(tga_colormap_bpp, 0, NULL);
5807
135
    } else {
5808
135
        tga_comp = stbi__tga_get_comp(tga_bits_per_pixel, (tga_image_type == 3) || (tga_image_type == 11), NULL);
5809
135
    }
5810
217
    if(!tga_comp) {
5811
11
      stbi__rewind(s);
5812
11
      return 0;
5813
11
    }
5814
206
    if (x) *x = tga_w;
5815
206
    if (y) *y = tga_h;
5816
206
    if (comp) *comp = tga_comp;
5817
206
    return 1;                   // seems to have passed everything
5818
217
}
5819
5820
static int stbi__tga_test(stbi__context *s)
5821
215
{
5822
215
   int res = 0;
5823
215
   int sz, tga_color_type;
5824
215
   stbi__get8(s);      //   discard Offset
5825
215
   tga_color_type = stbi__get8(s);   //   color type
5826
215
   if ( tga_color_type > 1 ) goto errorEnd;   //   only RGB or indexed allowed
5827
206
   sz = stbi__get8(s);   //   image type
5828
206
   if ( tga_color_type == 1 ) { // colormapped (paletted) image
5829
82
      if (sz != 1 && sz != 9) goto errorEnd; // colortype 1 demands image type 1 or 9
5830
82
      stbi__skip(s,4);       // skip index of first colormap entry and number of entries
5831
82
      sz = stbi__get8(s);    //   check bits per palette color entry
5832
82
      if ( (sz != 8) && (sz != 15) && (sz != 16) && (sz != 24) && (sz != 32) ) goto errorEnd;
5833
82
      stbi__skip(s,4);       // skip image x and y origin
5834
124
   } else { // "normal" image w/o colormap
5835
124
      if ( (sz != 2) && (sz != 3) && (sz != 10) && (sz != 11) ) goto errorEnd; // only RGB or grey allowed, +/- RLE
5836
124
      stbi__skip(s,9); // skip colormap specification and image x/y origin
5837
124
   }
5838
206
   if ( stbi__get16le(s) < 1 ) goto errorEnd;      //   test width
5839
206
   if ( stbi__get16le(s) < 1 ) goto errorEnd;      //   test height
5840
206
   sz = stbi__get8(s);   //   bits per pixel
5841
206
   if ( (tga_color_type == 1) && (sz != 8) && (sz != 16) ) goto errorEnd; // for colormapped images, bpp is size of an index
5842
206
   if ( (sz != 8) && (sz != 15) && (sz != 16) && (sz != 24) && (sz != 32) ) goto errorEnd;
5843
5844
206
   res = 1; // if we got this far, everything's good and we can return 1 instead of 0
5845
5846
215
errorEnd:
5847
215
   stbi__rewind(s);
5848
215
   return res;
5849
206
}
5850
5851
// read 16bit value and convert to 24bit RGB
5852
static void stbi__tga_read_rgb16(stbi__context *s, stbi_uc* out)
5853
28.0M
{
5854
28.0M
   stbi__uint16 px = (stbi__uint16)stbi__get16le(s);
5855
28.0M
   stbi__uint16 fiveBitMask = 31;
5856
   // we have 3 channels with 5bits each
5857
28.0M
   int r = (px >> 10) & fiveBitMask;
5858
28.0M
   int g = (px >> 5) & fiveBitMask;
5859
28.0M
   int b = px & fiveBitMask;
5860
   // Note that this saves the data in RGB(A) order, so it doesn't need to be swapped later
5861
28.0M
   out[0] = (stbi_uc)((r * 255)/31);
5862
28.0M
   out[1] = (stbi_uc)((g * 255)/31);
5863
28.0M
   out[2] = (stbi_uc)((b * 255)/31);
5864
5865
   // some people claim that the most significant bit might be used for alpha
5866
   // (possibly if an alpha-bit is set in the "image descriptor byte")
5867
   // but that only made 16bit test images completely translucent..
5868
   // so let's treat all 15 and 16bit TGAs as RGB with no alpha.
5869
28.0M
}
5870
5871
static void *stbi__tga_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
5872
206
{
5873
   //   read in the TGA header stuff
5874
206
   int tga_offset = stbi__get8(s);
5875
206
   int tga_indexed = stbi__get8(s);
5876
206
   int tga_image_type = stbi__get8(s);
5877
206
   int tga_is_RLE = 0;
5878
206
   int tga_palette_start = stbi__get16le(s);
5879
206
   int tga_palette_len = stbi__get16le(s);
5880
206
   int tga_palette_bits = stbi__get8(s);
5881
206
   int tga_x_origin = stbi__get16le(s);
5882
206
   int tga_y_origin = stbi__get16le(s);
5883
206
   int tga_width = stbi__get16le(s);
5884
206
   int tga_height = stbi__get16le(s);
5885
206
   int tga_bits_per_pixel = stbi__get8(s);
5886
206
   int tga_comp, tga_rgb16=0;
5887
206
   int tga_inverted = stbi__get8(s);
5888
   // int tga_alpha_bits = tga_inverted & 15; // the 4 lowest bits - unused (useless?)
5889
   //   image data
5890
206
   unsigned char *tga_data;
5891
206
   unsigned char *tga_palette = NULL;
5892
206
   int i, j;
5893
206
   unsigned char raw_data[4] = {0};
5894
206
   int RLE_count = 0;
5895
206
   int RLE_repeating = 0;
5896
206
   int read_next_pixel = 1;
5897
206
   STBI_NOTUSED(ri);
5898
206
   STBI_NOTUSED(tga_x_origin); // @TODO
5899
206
   STBI_NOTUSED(tga_y_origin); // @TODO
5900
5901
206
   if (tga_height > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
5902
206
   if (tga_width > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
5903
5904
   //   do a tiny bit of precessing
5905
206
   if ( tga_image_type >= 8 )
5906
94
   {
5907
94
      tga_image_type -= 8;
5908
94
      tga_is_RLE = 1;
5909
94
   }
5910
206
   tga_inverted = 1 - ((tga_inverted >> 5) & 1);
5911
5912
   //   If I'm paletted, then I'll use the number of bits from the palette
5913
206
   if ( tga_indexed ) tga_comp = stbi__tga_get_comp(tga_palette_bits, 0, &tga_rgb16);
5914
124
   else tga_comp = stbi__tga_get_comp(tga_bits_per_pixel, (tga_image_type == 3), &tga_rgb16);
5915
5916
206
   if(!tga_comp) // shouldn't really happen, stbi__tga_test() should have ensured basic consistency
5917
0
      return stbi__errpuc("bad format", "Can't find out TGA pixelformat");
5918
5919
   //   tga info
5920
206
   *x = tga_width;
5921
206
   *y = tga_height;
5922
206
   if (comp) *comp = tga_comp;
5923
5924
206
   if (!stbi__mad3sizes_valid(tga_width, tga_height, tga_comp, 0))
5925
0
      return stbi__errpuc("too large", "Corrupt TGA");
5926
5927
206
   tga_data = (unsigned char*)stbi__malloc_mad3(tga_width, tga_height, tga_comp, 0);
5928
206
   if (!tga_data) return stbi__errpuc("outofmem", "Out of memory");
5929
5930
   // skip to the data's starting position (offset usually = 0)
5931
206
   stbi__skip(s, tga_offset );
5932
5933
206
   if ( !tga_indexed && !tga_is_RLE && !tga_rgb16 ) {
5934
260k
      for (i=0; i < tga_height; ++i) {
5935
260k
         int row = tga_inverted ? tga_height -i - 1 : i;
5936
260k
         stbi_uc *tga_row = tga_data + row*tga_width*tga_comp;
5937
260k
         stbi__getn(s, tga_row, tga_width * tga_comp);
5938
260k
      }
5939
159
   } else  {
5940
      //   do I need to load a palette?
5941
159
      if ( tga_indexed)
5942
82
      {
5943
82
         if (tga_palette_len == 0) {  /* you have to have at least one entry! */
5944
1
            STBI_FREE(tga_data);
5945
1
            return stbi__errpuc("bad palette", "Corrupt TGA");
5946
1
         }
5947
5948
         //   any data to skip? (offset usually = 0)
5949
81
         stbi__skip(s, tga_palette_start );
5950
         //   load the palette
5951
81
         tga_palette = (unsigned char*)stbi__malloc_mad2(tga_palette_len, tga_comp, 0);
5952
81
         if (!tga_palette) {
5953
0
            STBI_FREE(tga_data);
5954
0
            return stbi__errpuc("outofmem", "Out of memory");
5955
0
         }
5956
81
         if (tga_rgb16) {
5957
44
            stbi_uc *pal_entry = tga_palette;
5958
44
            STBI_ASSERT(tga_comp == STBI_rgb);
5959
890k
            for (i=0; i < tga_palette_len; ++i) {
5960
890k
               stbi__tga_read_rgb16(s, pal_entry);
5961
890k
               pal_entry += tga_comp;
5962
890k
            }
5963
44
         } else if (!stbi__getn(s, tga_palette, tga_palette_len * tga_comp)) {
5964
12
               STBI_FREE(tga_data);
5965
12
               STBI_FREE(tga_palette);
5966
12
               return stbi__errpuc("bad palette", "Corrupt TGA");
5967
12
         }
5968
81
      }
5969
      //   load the data
5970
586M
      for (i=0; i < tga_width * tga_height; ++i)
5971
586M
      {
5972
         //   if I'm in RLE mode, do I need to get a RLE stbi__pngchunk?
5973
586M
         if ( tga_is_RLE )
5974
345M
         {
5975
345M
            if ( RLE_count == 0 )
5976
345M
            {
5977
               //   yep, get the next byte as a RLE command
5978
345M
               int RLE_cmd = stbi__get8(s);
5979
345M
               RLE_count = 1 + (RLE_cmd & 127);
5980
345M
               RLE_repeating = RLE_cmd >> 7;
5981
345M
               read_next_pixel = 1;
5982
345M
            } else if ( !RLE_repeating )
5983
1.05k
            {
5984
1.05k
               read_next_pixel = 1;
5985
1.05k
            }
5986
345M
         } else
5987
240M
         {
5988
240M
            read_next_pixel = 1;
5989
240M
         }
5990
         //   OK, if I need to read a pixel, do it now
5991
586M
         if ( read_next_pixel )
5992
586M
         {
5993
            //   load however much data we did have
5994
586M
            if ( tga_indexed )
5995
286M
            {
5996
               // read in index, then perform the lookup
5997
286M
               int pal_idx = (tga_bits_per_pixel == 8) ? stbi__get8(s) : stbi__get16le(s);
5998
286M
               if ( pal_idx >= tga_palette_len ) {
5999
                  // invalid index
6000
681
                  pal_idx = 0;
6001
681
               }
6002
286M
               pal_idx *= tga_comp;
6003
1.09G
               for (j = 0; j < tga_comp; ++j) {
6004
807M
                  raw_data[j] = tga_palette[pal_idx+j];
6005
807M
               }
6006
299M
            } else if(tga_rgb16) {
6007
27.1M
               STBI_ASSERT(tga_comp == STBI_rgb);
6008
27.1M
               stbi__tga_read_rgb16(s, raw_data);
6009
272M
            } else {
6010
               //   read in the data raw
6011
1.01G
               for (j = 0; j < tga_comp; ++j) {
6012
744M
                  raw_data[j] = stbi__get8(s);
6013
744M
               }
6014
272M
            }
6015
            //   clear the reading flag for the next pixel
6016
586M
            read_next_pixel = 0;
6017
586M
         } // end of reading a pixel
6018
6019
         // copy data
6020
2.22G
         for (j = 0; j < tga_comp; ++j)
6021
1.63G
           tga_data[i*tga_comp+j] = raw_data[j];
6022
6023
         //   in case we're in RLE mode, keep counting down
6024
586M
         --RLE_count;
6025
586M
      }
6026
      //   do I need to invert the image?
6027
146
      if ( tga_inverted )
6028
129
      {
6029
647k
         for (j = 0; j*2 < tga_height; ++j)
6030
647k
         {
6031
647k
            int index1 = j * tga_width * tga_comp;
6032
647k
            int index2 = (tga_height - 1 - j) * tga_width * tga_comp;
6033
769M
            for (i = tga_width * tga_comp; i > 0; --i)
6034
769M
            {
6035
769M
               unsigned char temp = tga_data[index1];
6036
769M
               tga_data[index1] = tga_data[index2];
6037
769M
               tga_data[index2] = temp;
6038
769M
               ++index1;
6039
769M
               ++index2;
6040
769M
            }
6041
647k
         }
6042
129
      }
6043
      //   clear my palette, if I had one
6044
146
      if ( tga_palette != NULL )
6045
69
      {
6046
69
         STBI_FREE( tga_palette );
6047
69
      }
6048
146
   }
6049
6050
   // swap RGB - if the source data was RGB16, it already is in the right order
6051
193
   if (tga_comp >= 3 && !tga_rgb16)
6052
50
   {
6053
50
      unsigned char* tga_pixel = tga_data;
6054
283M
      for (i=0; i < tga_width * tga_height; ++i)
6055
283M
      {
6056
283M
         unsigned char temp = tga_pixel[0];
6057
283M
         tga_pixel[0] = tga_pixel[2];
6058
283M
         tga_pixel[2] = temp;
6059
283M
         tga_pixel += tga_comp;
6060
283M
      }
6061
50
   }
6062
6063
   // convert to target component count
6064
193
   if (req_comp && req_comp != tga_comp)
6065
168
      tga_data = stbi__convert_format(tga_data, tga_comp, req_comp, tga_width, tga_height);
6066
6067
   //   the things I do to get rid of an error message, and yet keep
6068
   //   Microsoft's C compilers happy... [8^(
6069
193
   tga_palette_start = tga_palette_len = tga_palette_bits =
6070
193
         tga_x_origin = tga_y_origin = 0;
6071
193
   STBI_NOTUSED(tga_palette_start);
6072
   //   OK, done
6073
193
   return tga_data;
6074
206
}
6075
#endif
6076
6077
// *************************************************************************************************
6078
// Photoshop PSD loader -- PD by Thatcher Ulrich, integration by Nicolas Schulz, tweaked by STB
6079
6080
#ifndef STBI_NO_PSD
6081
static int stbi__psd_test(stbi__context *s)
6082
2.52k
{
6083
2.52k
   int r = (stbi__get32be(s) == 0x38425053);
6084
2.52k
   stbi__rewind(s);
6085
2.52k
   return r;
6086
2.52k
}
6087
6088
static int stbi__psd_decode_rle(stbi__context *s, stbi_uc *p, int pixelCount)
6089
129
{
6090
129
   int count, nleft, len;
6091
6092
129
   count = 0;
6093
350M
   while ((nleft = pixelCount - count) > 0) {
6094
350M
      len = stbi__get8(s);
6095
350M
      if (len == 128) {
6096
         // No-op.
6097
350M
      } else if (len < 128) {
6098
         // Copy next len+1 bytes literally.
6099
350M
         len++;
6100
350M
         if (len > nleft) return 0; // corrupt data
6101
350M
         count += len;
6102
700M
         while (len) {
6103
350M
            *p = stbi__get8(s);
6104
350M
            p += 4;
6105
350M
            len--;
6106
350M
         }
6107
350M
      } else if (len > 128) {
6108
291
         stbi_uc   val;
6109
         // Next -len+1 bytes in the dest are replicated from next source byte.
6110
         // (Interpret len as a negative 8-bit int.)
6111
291
         len = 257 - len;
6112
291
         if (len > nleft) return 0; // corrupt data
6113
290
         val = stbi__get8(s);
6114
290
         count += len;
6115
14.0k
         while (len) {
6116
13.7k
            *p = val;
6117
13.7k
            p += 4;
6118
13.7k
            len--;
6119
13.7k
         }
6120
290
      }
6121
350M
   }
6122
6123
123
   return 1;
6124
129
}
6125
6126
static void *stbi__psd_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri, int bpc)
6127
227
{
6128
227
   int pixelCount;
6129
227
   int channelCount, compression;
6130
227
   int channel, i;
6131
227
   int bitdepth;
6132
227
   int w,h;
6133
227
   stbi_uc *out;
6134
227
   STBI_NOTUSED(ri);
6135
6136
   // Check identifier
6137
227
   if (stbi__get32be(s) != 0x38425053)   // "8BPS"
6138
0
      return stbi__errpuc("not PSD", "Corrupt PSD image");
6139
6140
   // Check file type version.
6141
227
   if (stbi__get16be(s) != 1)
6142
0
      return stbi__errpuc("wrong version", "Unsupported version of PSD image");
6143
6144
   // Skip 6 reserved bytes.
6145
227
   stbi__skip(s, 6 );
6146
6147
   // Read the number of channels (R, G, B, A, etc).
6148
227
   channelCount = stbi__get16be(s);
6149
227
   if (channelCount < 0 || channelCount > 16)
6150
0
      return stbi__errpuc("wrong channel count", "Unsupported number of channels in PSD image");
6151
6152
   // Read the rows and columns of the image.
6153
227
   h = stbi__get32be(s);
6154
227
   w = stbi__get32be(s);
6155
6156
227
   if (h > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
6157
225
   if (w > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
6158
6159
   // Make sure the depth is 8 bits.
6160
224
   bitdepth = stbi__get16be(s);
6161
224
   if (bitdepth != 8 && bitdepth != 16)
6162
0
      return stbi__errpuc("unsupported bit depth", "PSD bit depth is not 8 or 16 bit");
6163
6164
   // Make sure the color mode is RGB.
6165
   // Valid options are:
6166
   //   0: Bitmap
6167
   //   1: Grayscale
6168
   //   2: Indexed color
6169
   //   3: RGB color
6170
   //   4: CMYK color
6171
   //   7: Multichannel
6172
   //   8: Duotone
6173
   //   9: Lab color
6174
224
   if (stbi__get16be(s) != 3)
6175
0
      return stbi__errpuc("wrong color format", "PSD is not in RGB color format");
6176
6177
   // Skip the Mode Data.  (It's the palette for indexed color; other info for other modes.)
6178
224
   stbi__skip(s,stbi__get32be(s) );
6179
6180
   // Skip the image resources.  (resolution, pen tool paths, etc)
6181
224
   stbi__skip(s, stbi__get32be(s) );
6182
6183
   // Skip the reserved data.
6184
224
   stbi__skip(s, stbi__get32be(s) );
6185
6186
   // Find out if the data is compressed.
6187
   // Known values:
6188
   //   0: no compression
6189
   //   1: RLE compressed
6190
224
   compression = stbi__get16be(s);
6191
224
   if (compression > 1)
6192
11
      return stbi__errpuc("bad compression", "PSD has an unknown compression format");
6193
6194
   // Check size
6195
213
   if (!stbi__mad3sizes_valid(4, w, h, 0))
6196
54
      return stbi__errpuc("too large", "Corrupt PSD");
6197
6198
   // Create the destination image.
6199
6200
159
   if (!compression && bitdepth == 16 && bpc == 16) {
6201
0
      out = (stbi_uc *) stbi__malloc_mad3(8, w, h, 0);
6202
0
      ri->bits_per_channel = 16;
6203
0
   } else
6204
159
      out = (stbi_uc *) stbi__malloc(4 * w*h);
6205
6206
159
   if (!out) return stbi__errpuc("outofmem", "Out of memory");
6207
159
   pixelCount = w*h;
6208
6209
   // Initialize the data to zero.
6210
   //memset( out, 0, pixelCount * 4 );
6211
6212
   // Finally, the image data.
6213
159
   if (compression) {
6214
      // RLE as used by .PSD and .TIFF
6215
      // Loop until you get the number of unpacked bytes you are expecting:
6216
      //     Read the next source byte into n.
6217
      //     If n is between 0 and 127 inclusive, copy the next n+1 bytes literally.
6218
      //     Else if n is between -127 and -1 inclusive, copy the next byte -n+1 times.
6219
      //     Else if n is 128, noop.
6220
      // Endloop
6221
6222
      // The RLE-compressed data is preceded by a 2-byte data count for each row in the data,
6223
      // which we're going to just skip.
6224
74
      stbi__skip(s, h * channelCount * 2 );
6225
6226
      // Read the RLE data by channel.
6227
349
      for (channel = 0; channel < 4; channel++) {
6228
281
         stbi_uc *p;
6229
6230
281
         p = out+channel;
6231
281
         if (channel >= channelCount) {
6232
            // Fill this channel with default data.
6233
628M
            for (i = 0; i < pixelCount; i++, p += 4)
6234
628M
               *p = (channel == 3 ? 255 : 0);
6235
152
         } else {
6236
            // Read the RLE data.
6237
129
            if (!stbi__psd_decode_rle(s, p, pixelCount)) {
6238
6
               STBI_FREE(out);
6239
6
               return stbi__errpuc("corrupt", "bad RLE data");
6240
6
            }
6241
129
         }
6242
281
      }
6243
6244
85
   } else {
6245
      // We're at the raw image data.  It's each channel in order (Red, Green, Blue, Alpha, ...)
6246
      // where each channel consists of an 8-bit (or 16-bit) value for each pixel in the image.
6247
6248
      // Read the data by channel.
6249
425
      for (channel = 0; channel < 4; channel++) {
6250
340
         if (channel >= channelCount) {
6251
            // Fill this channel with default data.
6252
120
            if (bitdepth == 16 && bpc == 16) {
6253
0
               stbi__uint16 *q = ((stbi__uint16 *) out) + channel;
6254
0
               stbi__uint16 val = channel == 3 ? 65535 : 0;
6255
0
               for (i = 0; i < pixelCount; i++, q += 4)
6256
0
                  *q = val;
6257
120
            } else {
6258
120
               stbi_uc *p = out+channel;
6259
120
               stbi_uc val = channel == 3 ? 255 : 0;
6260
230M
               for (i = 0; i < pixelCount; i++, p += 4)
6261
230M
                  *p = val;
6262
120
            }
6263
220
         } else {
6264
220
            if (ri->bits_per_channel == 16) {    // output bpc
6265
0
               stbi__uint16 *q = ((stbi__uint16 *) out) + channel;
6266
0
               for (i = 0; i < pixelCount; i++, q += 4)
6267
0
                  *q = (stbi__uint16) stbi__get16be(s);
6268
220
            } else {
6269
220
               stbi_uc *p = out+channel;
6270
220
               if (bitdepth == 16) {  // input bpc
6271
217M
                  for (i = 0; i < pixelCount; i++, p += 4)
6272
217M
                     *p = (stbi_uc) (stbi__get16be(s) >> 8);
6273
143
               } else {
6274
563M
                  for (i = 0; i < pixelCount; i++, p += 4)
6275
563M
                     *p = stbi__get8(s);
6276
143
               }
6277
220
            }
6278
220
         }
6279
340
      }
6280
85
   }
6281
6282
   // remove weird white matte from PSD
6283
153
   if (channelCount >= 4) {
6284
54
      if (ri->bits_per_channel == 16) {
6285
0
         for (i=0; i < w*h; ++i) {
6286
0
            stbi__uint16 *pixel = (stbi__uint16 *) out + 4*i;
6287
0
            if (pixel[3] != 0 && pixel[3] != 65535) {
6288
0
               float a = pixel[3] / 65535.0f;
6289
0
               float ra = 1.0f / a;
6290
0
               float inv_a = 65535.0f * (1 - ra);
6291
0
               pixel[0] = (stbi__uint16) (pixel[0]*ra + inv_a);
6292
0
               pixel[1] = (stbi__uint16) (pixel[1]*ra + inv_a);
6293
0
               pixel[2] = (stbi__uint16) (pixel[2]*ra + inv_a);
6294
0
            }
6295
0
         }
6296
54
      } else {
6297
174M
         for (i=0; i < w*h; ++i) {
6298
174M
            unsigned char *pixel = out + 4*i;
6299
174M
            if (pixel[3] != 0 && pixel[3] != 255) {
6300
337
               float a = pixel[3] / 255.0f;
6301
337
               float ra = 1.0f / a;
6302
337
               float inv_a = 255.0f * (1 - ra);
6303
337
               pixel[0] = (unsigned char) (pixel[0]*ra + inv_a);
6304
337
               pixel[1] = (unsigned char) (pixel[1]*ra + inv_a);
6305
337
               pixel[2] = (unsigned char) (pixel[2]*ra + inv_a);
6306
337
            }
6307
174M
         }
6308
54
      }
6309
54
   }
6310
6311
   // convert to desired output format
6312
153
   if (req_comp && req_comp != 4) {
6313
0
      if (ri->bits_per_channel == 16)
6314
0
         out = (stbi_uc *) stbi__convert_format16((stbi__uint16 *) out, 4, req_comp, w, h);
6315
0
      else
6316
0
         out = stbi__convert_format(out, 4, req_comp, w, h);
6317
0
      if (out == NULL) return out; // stbi__convert_format frees input on failure
6318
0
   }
6319
6320
153
   if (comp) *comp = 4;
6321
153
   *y = h;
6322
153
   *x = w;
6323
6324
153
   return out;
6325
153
}
6326
#endif
6327
6328
// *************************************************************************************************
6329
// Softimage PIC loader
6330
// by Tom Seddon
6331
//
6332
// See http://softimage.wiki.softimage.com/index.php/INFO:_PIC_file_format
6333
// See http://ozviz.wasp.uwa.edu.au/~pbourke/dataformats/softimagepic/
6334
6335
#ifndef STBI_NO_PIC
6336
static int stbi__pic_is4(stbi__context *s,const char *str)
6337
5.24k
{
6338
5.24k
   int i;
6339
7.74k
   for (i=0; i<4; ++i)
6340
7.12k
      if (stbi__get8(s) != (stbi_uc)str[i])
6341
4.62k
         return 0;
6342
6343
620
   return 1;
6344
5.24k
}
6345
6346
static int stbi__pic_test_core(stbi__context *s)
6347
2.29k
{
6348
2.29k
   int i;
6349
6350
2.29k
   if (!stbi__pic_is4(s,"\x53\x80\xF6\x34"))
6351
2.10k
      return 0;
6352
6353
16.1k
   for(i=0;i<84;++i)
6354
15.9k
      stbi__get8(s);
6355
6356
190
   if (!stbi__pic_is4(s,"PICT"))
6357
9
      return 0;
6358
6359
181
   return 1;
6360
190
}
6361
6362
typedef struct
6363
{
6364
   stbi_uc size,type,channel;
6365
} stbi__pic_packet;
6366
6367
static stbi_uc *stbi__readval(stbi__context *s, int channel, stbi_uc *dest)
6368
74.4M
{
6369
74.4M
   int mask=0x80, i;
6370
6371
372M
   for (i=0; i<4; ++i, mask>>=1) {
6372
297M
      if (channel & mask) {
6373
544
         if (stbi__at_eof(s)) return stbi__errpuc("bad file","PIC file too short");
6374
515
         dest[i]=stbi__get8(s);
6375
515
      }
6376
297M
   }
6377
6378
74.4M
   return dest;
6379
74.4M
}
6380
6381
static void stbi__copyval(int channel,stbi_uc *dest,const stbi_uc *src)
6382
584k
{
6383
584k
   int mask=0x80,i;
6384
6385
2.92M
   for (i=0;i<4; ++i, mask>>=1)
6386
2.33M
      if (channel&mask)
6387
322k
         dest[i]=src[i];
6388
584k
}
6389
6390
static stbi_uc *stbi__pic_load_core(stbi__context *s,int width,int height,int *comp, stbi_uc *result)
6391
181
{
6392
181
   int act_comp=0,num_packets=0,y,chained;
6393
181
   stbi__pic_packet packets[10];
6394
6395
   // this will (should...) cater for even some bizarre stuff like having data
6396
    // for the same channel in multiple packets.
6397
212
   do {
6398
212
      stbi__pic_packet *packet;
6399
6400
212
      if (num_packets==sizeof(packets)/sizeof(packets[0]))
6401
0
         return stbi__errpuc("bad format","too many packets");
6402
6403
212
      packet = &packets[num_packets++];
6404
6405
212
      chained = stbi__get8(s);
6406
212
      packet->size    = stbi__get8(s);
6407
212
      packet->type    = stbi__get8(s);
6408
212
      packet->channel = stbi__get8(s);
6409
6410
212
      act_comp |= packet->channel;
6411
6412
212
      if (stbi__at_eof(s))          return stbi__errpuc("bad file","file too short (reading packets)");
6413
212
      if (packet->size != 8)  return stbi__errpuc("bad format","packet isn't 8bpp");
6414
212
   } while (chained);
6415
6416
181
   *comp = (act_comp & 0x10 ? 4 : 3); // has alpha channel?
6417
6418
509k
   for(y=0; y<height; ++y) {
6419
509k
      int packet_idx;
6420
6421
1.09M
      for(packet_idx=0; packet_idx < num_packets; ++packet_idx) {
6422
589k
         stbi__pic_packet *packet = &packets[packet_idx];
6423
589k
         stbi_uc *dest = result+y*width*4;
6424
6425
589k
         switch (packet->type) {
6426
7
            default:
6427
7
               return stbi__errpuc("bad format","packet has bad compression type");
6428
6429
358k
            case 0: {//uncompressed
6430
358k
               int x;
6431
6432
74.7M
               for(x=0;x<width;++x, dest+=4)
6433
74.4M
                  if (!stbi__readval(s,packet->channel,dest))
6434
13
                     return 0;
6435
358k
               break;
6436
358k
            }
6437
6438
358k
            case 1://Pure RLE
6439
87.1k
               {
6440
87.1k
                  int left=width, i;
6441
6442
88.0k
                  while (left>0) {
6443
945
                     stbi_uc count,value[4];
6444
6445
945
                     count=stbi__get8(s);
6446
945
                     if (stbi__at_eof(s))   return stbi__errpuc("bad file","file too short (pure read count)");
6447
6448
899
                     if (count > left)
6449
204
                        count = (stbi_uc) left;
6450
6451
899
                     if (!stbi__readval(s,packet->channel,value))  return 0;
6452
6453
49.4k
                     for(i=0; i<count; ++i,dest+=4)
6454
48.5k
                        stbi__copyval(packet->channel,dest,value);
6455
894
                     left -= count;
6456
894
                  }
6457
87.1k
               }
6458
87.0k
               break;
6459
6460
144k
            case 2: {//Mixed RLE
6461
144k
               int left=width;
6462
146k
               while (left>0) {
6463
2.47k
                  int count = stbi__get8(s), i;
6464
2.47k
                  if (stbi__at_eof(s))  return stbi__errpuc("bad file","file too short (mixed read count)");
6465
6466
2.43k
                  if (count >= 128) { // Repeated
6467
1.03k
                     stbi_uc value[4];
6468
6469
1.03k
                     if (count==128)
6470
304
                        count = stbi__get16be(s);
6471
732
                     else
6472
732
                        count -= 127;
6473
1.03k
                     if (count > left)
6474
14
                        return stbi__errpuc("bad file","scanline overrun");
6475
6476
1.02k
                     if (!stbi__readval(s,packet->channel,value))
6477
5
                        return 0;
6478
6479
536k
                     for(i=0;i<count;++i, dest += 4)
6480
535k
                        stbi__copyval(packet->channel,dest,value);
6481
1.39k
                  } else { // Raw
6482
1.39k
                     ++count;
6483
1.39k
                     if (count>left) return stbi__errpuc("bad file","scanline overrun");
6484
6485
41.2k
                     for(i=0;i<count;++i, dest+=4)
6486
39.8k
                        if (!stbi__readval(s,packet->channel,dest))
6487
6
                           return 0;
6488
1.39k
                  }
6489
2.40k
                  left-=count;
6490
2.40k
               }
6491
144k
               break;
6492
144k
            }
6493
589k
         }
6494
589k
      }
6495
509k
   }
6496
6497
37
   return result;
6498
181
}
6499
6500
static void *stbi__pic_load(stbi__context *s,int *px,int *py,int *comp,int req_comp, stbi__result_info *ri)
6501
181
{
6502
181
   stbi_uc *result;
6503
181
   int i, x,y, internal_comp;
6504
181
   STBI_NOTUSED(ri);
6505
6506
181
   if (!comp) comp = &internal_comp;
6507
6508
16.8k
   for (i=0; i<92; ++i)
6509
16.6k
      stbi__get8(s);
6510
6511
181
   x = stbi__get16be(s);
6512
181
   y = stbi__get16be(s);
6513
6514
181
   if (y > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
6515
181
   if (x > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
6516
6517
181
   if (stbi__at_eof(s))  return stbi__errpuc("bad file","file too short (pic header)");
6518
181
   if (!stbi__mad3sizes_valid(x, y, 4, 0)) return stbi__errpuc("too large", "PIC image too large to decode");
6519
6520
181
   stbi__get32be(s); //skip `ratio'
6521
181
   stbi__get16be(s); //skip `fields'
6522
181
   stbi__get16be(s); //skip `pad'
6523
6524
   // intermediate buffer is RGBA
6525
181
   result = (stbi_uc *) stbi__malloc_mad3(x, y, 4, 0);
6526
181
   if (!result) return stbi__errpuc("outofmem", "Out of memory");
6527
181
   memset(result, 0xff, x*y*4);
6528
6529
181
   if (!stbi__pic_load_core(s,x,y,comp, result)) {
6530
144
      STBI_FREE(result);
6531
144
      result=0;
6532
144
   }
6533
181
   *px = x;
6534
181
   *py = y;
6535
181
   if (req_comp == 0) req_comp = *comp;
6536
181
   result=stbi__convert_format(result,4,req_comp,x,y);
6537
6538
181
   return result;
6539
181
}
6540
6541
static int stbi__pic_test(stbi__context *s)
6542
2.29k
{
6543
2.29k
   int r = stbi__pic_test_core(s);
6544
2.29k
   stbi__rewind(s);
6545
2.29k
   return r;
6546
2.29k
}
6547
#endif
6548
6549
// *************************************************************************************************
6550
// GIF loader -- public domain by Jean-Marc Lienher -- simplified/shrunk by stb
6551
6552
#ifndef STBI_NO_GIF
6553
typedef struct
6554
{
6555
   stbi__int16 prefix;
6556
   stbi_uc first;
6557
   stbi_uc suffix;
6558
} stbi__gif_lzw;
6559
6560
typedef struct
6561
{
6562
   int w,h;
6563
   stbi_uc *out;                 // output buffer (always 4 components)
6564
   stbi_uc *background;          // The current "background" as far as a gif is concerned
6565
   stbi_uc *history;
6566
   int flags, bgindex, ratio, transparent, eflags;
6567
   stbi_uc  pal[256][4];
6568
   stbi_uc lpal[256][4];
6569
   stbi__gif_lzw codes[8192];
6570
   stbi_uc *color_table;
6571
   int parse, step;
6572
   int lflags;
6573
   int start_x, start_y;
6574
   int max_x, max_y;
6575
   int cur_x, cur_y;
6576
   int line_size;
6577
   int delay;
6578
} stbi__gif;
6579
6580
static int stbi__gif_test_raw(stbi__context *s)
6581
2.88k
{
6582
2.88k
   int sz;
6583
2.88k
   if (stbi__get8(s) != 'G' || stbi__get8(s) != 'I' || stbi__get8(s) != 'F' || stbi__get8(s) != '8') return 0;
6584
359
   sz = stbi__get8(s);
6585
359
   if (sz != '9' && sz != '7') return 0;
6586
359
   if (stbi__get8(s) != 'a') return 0;
6587
359
   return 1;
6588
359
}
6589
6590
static int stbi__gif_test(stbi__context *s)
6591
2.88k
{
6592
2.88k
   int r = stbi__gif_test_raw(s);
6593
2.88k
   stbi__rewind(s);
6594
2.88k
   return r;
6595
2.88k
}
6596
6597
static void stbi__gif_parse_colortable(stbi__context *s, stbi_uc pal[256][4], int num_entries, int transp)
6598
210
{
6599
210
   int i;
6600
5.48k
   for (i=0; i < num_entries; ++i) {
6601
5.27k
      pal[i][2] = stbi__get8(s);
6602
5.27k
      pal[i][1] = stbi__get8(s);
6603
5.27k
      pal[i][0] = stbi__get8(s);
6604
5.27k
      pal[i][3] = transp == i ? 0 : 255;
6605
5.27k
   }
6606
210
}
6607
6608
static int stbi__gif_header(stbi__context *s, stbi__gif *g, int *comp, int is_info)
6609
4.60k
{
6610
4.60k
   stbi_uc version;
6611
4.60k
   if (stbi__get8(s) != 'G' || stbi__get8(s) != 'I' || stbi__get8(s) != 'F' || stbi__get8(s) != '8')
6612
3.85k
      return stbi__err("not GIF", "Corrupt GIF");
6613
6614
751
   version = stbi__get8(s);
6615
751
   if (version != '7' && version != '9')    return stbi__err("not GIF", "Corrupt GIF");
6616
744
   if (stbi__get8(s) != 'a')                return stbi__err("not GIF", "Corrupt GIF");
6617
6618
735
   stbi__g_failure_reason = "";
6619
735
   g->w = stbi__get16le(s);
6620
735
   g->h = stbi__get16le(s);
6621
735
   g->flags = stbi__get8(s);
6622
735
   g->bgindex = stbi__get8(s);
6623
735
   g->ratio = stbi__get8(s);
6624
735
   g->transparent = -1;
6625
6626
735
   if (g->w > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
6627
735
   if (g->h > STBI_MAX_DIMENSIONS) return stbi__err("too large","Very large image (corrupt?)");
6628
6629
735
   if (comp != 0) *comp = 4;  // can't actually tell whether it's 3 or 4 until we parse the comments
6630
6631
735
   if (is_info) return 1;
6632
6633
359
   if (g->flags & 0x80)
6634
103
      stbi__gif_parse_colortable(s,g->pal, 2 << (g->flags & 7), -1);
6635
6636
359
   return 1;
6637
735
}
6638
6639
static int stbi__gif_info_raw(stbi__context *s, int *x, int *y, int *comp)
6640
4.24k
{
6641
4.24k
   stbi__gif* g = (stbi__gif*) stbi__malloc(sizeof(stbi__gif));
6642
4.24k
   if (!g) return stbi__err("outofmem", "Out of memory");
6643
4.24k
   if (!stbi__gif_header(s, g, comp, 1)) {
6644
3.86k
      STBI_FREE(g);
6645
3.86k
      stbi__rewind( s );
6646
3.86k
      return 0;
6647
3.86k
   }
6648
376
   if (x) *x = g->w;
6649
376
   if (y) *y = g->h;
6650
376
   STBI_FREE(g);
6651
376
   return 1;
6652
4.24k
}
6653
6654
static void stbi__out_gif_code(stbi__gif *g, stbi__uint16 code)
6655
1.83M
{
6656
1.83M
   stbi_uc *p, *c;
6657
1.83M
   int idx;
6658
6659
   // recurse to decode the prefixes, since the linked-list is backwards,
6660
   // and working backwards through an interleaved image would be nasty
6661
1.83M
   if (g->codes[code].prefix >= 0)
6662
1.70M
      stbi__out_gif_code(g, g->codes[code].prefix);
6663
6664
1.83M
   if (g->cur_y >= g->max_y) return;
6665
6666
1.82M
   idx = g->cur_x + g->cur_y;
6667
1.82M
   p = &g->out[idx];
6668
1.82M
   g->history[idx / 4] = 1;
6669
6670
1.82M
   c = &g->color_table[g->codes[code].suffix * 4];
6671
1.82M
   if (c[3] > 128) { // don't render transparent pixels;
6672
1.76M
      p[0] = c[2];
6673
1.76M
      p[1] = c[1];
6674
1.76M
      p[2] = c[0];
6675
1.76M
      p[3] = c[3];
6676
1.76M
   }
6677
1.82M
   g->cur_x += 4;
6678
6679
1.82M
   if (g->cur_x >= g->max_x) {
6680
5.82k
      g->cur_x = g->start_x;
6681
5.82k
      g->cur_y += g->step;
6682
6683
5.93k
      while (g->cur_y >= g->max_y && g->parse > 0) {
6684
112
         g->step = (1 << g->parse) * g->line_size;
6685
112
         g->cur_y = g->start_y + (g->step >> 1);
6686
112
         --g->parse;
6687
112
      }
6688
5.82k
   }
6689
1.82M
}
6690
6691
static stbi_uc *stbi__process_gif_raster(stbi__context *s, stbi__gif *g)
6692
155
{
6693
155
   stbi_uc lzw_cs;
6694
155
   stbi__int32 len, init_code;
6695
155
   stbi__uint32 first;
6696
155
   stbi__int32 codesize, codemask, avail, oldcode, bits, valid_bits, clear;
6697
155
   stbi__gif_lzw *p;
6698
6699
155
   lzw_cs = stbi__get8(s);
6700
155
   if (lzw_cs > 12) return NULL;
6701
152
   clear = 1 << lzw_cs;
6702
152
   first = 1;
6703
152
   codesize = lzw_cs + 1;
6704
152
   codemask = (1 << codesize) - 1;
6705
152
   bits = 0;
6706
152
   valid_bits = 0;
6707
57.0k
   for (init_code = 0; init_code < clear; init_code++) {
6708
56.9k
      g->codes[init_code].prefix = -1;
6709
56.9k
      g->codes[init_code].first = (stbi_uc) init_code;
6710
56.9k
      g->codes[init_code].suffix = (stbi_uc) init_code;
6711
56.9k
   }
6712
6713
   // support no starting clear code
6714
152
   avail = clear+2;
6715
152
   oldcode = -1;
6716
6717
152
   len = 0;
6718
293k
   for(;;) {
6719
293k
      if (valid_bits < codesize) {
6720
164k
         if (len == 0) {
6721
1.35k
            len = stbi__get8(s); // start new block
6722
1.35k
            if (len == 0)
6723
95
               return g->out;
6724
1.35k
         }
6725
163k
         --len;
6726
163k
         bits |= (stbi__int32) stbi__get8(s) << valid_bits;
6727
163k
         valid_bits += 8;
6728
163k
      } else {
6729
129k
         stbi__int32 code = bits & codemask;
6730
129k
         bits >>= codesize;
6731
129k
         valid_bits -= codesize;
6732
         // @OPTIMIZE: is there some way we can accelerate the non-clear path?
6733
129k
         if (code == clear) {  // clear code
6734
3.61k
            codesize = lzw_cs + 1;
6735
3.61k
            codemask = (1 << codesize) - 1;
6736
3.61k
            avail = clear + 2;
6737
3.61k
            oldcode = -1;
6738
3.61k
            first = 0;
6739
125k
         } else if (code == clear + 1) { // end of stream code
6740
27
            stbi__skip(s, len);
6741
255
            while ((len = stbi__get8(s)) > 0)
6742
228
               stbi__skip(s,len);
6743
27
            return g->out;
6744
125k
         } else if (code <= avail) {
6745
125k
            if (first) {
6746
10
               return stbi__errpuc("no clear code", "Corrupt GIF");
6747
10
            }
6748
6749
125k
            if (oldcode >= 0) {
6750
125k
               p = &g->codes[avail++];
6751
125k
               if (avail > 8192) {
6752
4
                  return stbi__errpuc("too many codes", "Corrupt GIF");
6753
4
               }
6754
6755
125k
               p->prefix = (stbi__int16) oldcode;
6756
125k
               p->first = g->codes[oldcode].first;
6757
125k
               p->suffix = (code == avail) ? p->first : g->codes[code].first;
6758
125k
            } else if (code == avail)
6759
2
               return stbi__errpuc("illegal code in raster", "Corrupt GIF");
6760
6761
125k
            stbi__out_gif_code(g, (stbi__uint16) code);
6762
6763
125k
            if ((avail & codemask) == 0 && avail <= 0x0FFF) {
6764
718
               codesize++;
6765
718
               codemask = (1 << codesize) - 1;
6766
718
            }
6767
6768
125k
            oldcode = code;
6769
125k
         } else {
6770
14
            return stbi__errpuc("illegal code in raster", "Corrupt GIF");
6771
14
         }
6772
129k
      }
6773
293k
   }
6774
152
}
6775
6776
// this function is designed to support animated gifs, although stb_image doesn't support it
6777
// two back is the image from two frames ago, used for a very specific disposal format
6778
static stbi_uc *stbi__gif_load_next(stbi__context *s, stbi__gif *g, int *comp, int req_comp, stbi_uc *two_back)
6779
359
{
6780
359
   int dispose;
6781
359
   int first_frame;
6782
359
   int pi;
6783
359
   int pcount;
6784
359
   STBI_NOTUSED(req_comp);
6785
6786
   // on first frame, any non-written pixels get the background colour (non-transparent)
6787
359
   first_frame = 0;
6788
359
   if (g->out == 0) {
6789
359
      if (!stbi__gif_header(s, g, comp,0)) return 0; // stbi__g_failure_reason set by stbi__gif_header
6790
359
      if (!stbi__mad3sizes_valid(4, g->w, g->h, 0))
6791
0
         return stbi__errpuc("too large", "GIF image is too large");
6792
359
      pcount = g->w * g->h;
6793
359
      g->out = (stbi_uc *) stbi__malloc(4 * pcount);
6794
359
      g->background = (stbi_uc *) stbi__malloc(4 * pcount);
6795
359
      g->history = (stbi_uc *) stbi__malloc(pcount);
6796
359
      if (!g->out || !g->background || !g->history)
6797
0
         return stbi__errpuc("outofmem", "Out of memory");
6798
6799
      // image is treated as "transparent" at the start - ie, nothing overwrites the current background;
6800
      // background colour is only used for pixels that are not rendered first frame, after that "background"
6801
      // color refers to the color that was there the previous frame.
6802
359
      memset(g->out, 0x00, 4 * pcount);
6803
359
      memset(g->background, 0x00, 4 * pcount); // state of the background (starts transparent)
6804
359
      memset(g->history, 0x00, pcount);        // pixels that were affected previous frame
6805
359
      first_frame = 1;
6806
359
   } else {
6807
      // second frame - how do we dispose of the previous one?
6808
0
      dispose = (g->eflags & 0x1C) >> 2;
6809
0
      pcount = g->w * g->h;
6810
6811
0
      if ((dispose == 3) && (two_back == 0)) {
6812
0
         dispose = 2; // if I don't have an image to revert back to, default to the old background
6813
0
      }
6814
6815
0
      if (dispose == 3) { // use previous graphic
6816
0
         for (pi = 0; pi < pcount; ++pi) {
6817
0
            if (g->history[pi]) {
6818
0
               memcpy( &g->out[pi * 4], &two_back[pi * 4], 4 );
6819
0
            }
6820
0
         }
6821
0
      } else if (dispose == 2) {
6822
         // restore what was changed last frame to background before that frame;
6823
0
         for (pi = 0; pi < pcount; ++pi) {
6824
0
            if (g->history[pi]) {
6825
0
               memcpy( &g->out[pi * 4], &g->background[pi * 4], 4 );
6826
0
            }
6827
0
         }
6828
0
      } else {
6829
         // This is a non-disposal case eithe way, so just
6830
         // leave the pixels as is, and they will become the new background
6831
         // 1: do not dispose
6832
         // 0:  not specified.
6833
0
      }
6834
6835
      // background is what out is after the undoing of the previou frame;
6836
0
      memcpy( g->background, g->out, 4 * g->w * g->h );
6837
0
   }
6838
6839
   // clear my history;
6840
359
   memset( g->history, 0x00, g->w * g->h );        // pixels that were affected previous frame
6841
6842
1.35k
   for (;;) {
6843
1.35k
      int tag = stbi__get8(s);
6844
1.35k
      switch (tag) {
6845
196
         case 0x2C: /* Image Descriptor */
6846
196
         {
6847
196
            stbi__int32 x, y, w, h;
6848
196
            stbi_uc *o;
6849
6850
196
            x = stbi__get16le(s);
6851
196
            y = stbi__get16le(s);
6852
196
            w = stbi__get16le(s);
6853
196
            h = stbi__get16le(s);
6854
196
            if (((x + w) > (g->w)) || ((y + h) > (g->h)))
6855
23
               return stbi__errpuc("bad Image Descriptor", "Corrupt GIF");
6856
6857
173
            g->line_size = g->w * 4;
6858
173
            g->start_x = x * 4;
6859
173
            g->start_y = y * g->line_size;
6860
173
            g->max_x   = g->start_x + w * 4;
6861
173
            g->max_y   = g->start_y + h * g->line_size;
6862
173
            g->cur_x   = g->start_x;
6863
173
            g->cur_y   = g->start_y;
6864
6865
            // if the width of the specified rectangle is 0, that means
6866
            // we may not see *any* pixels or the image is malformed;
6867
            // to make sure this is caught, move the current y down to
6868
            // max_y (which is what out_gif_code checks).
6869
173
            if (w == 0)
6870
41
               g->cur_y = g->max_y;
6871
6872
173
            g->lflags = stbi__get8(s);
6873
6874
173
            if (g->lflags & 0x40) {
6875
100
               g->step = 8 * g->line_size; // first interlaced spacing
6876
100
               g->parse = 3;
6877
100
            } else {
6878
73
               g->step = g->line_size;
6879
73
               g->parse = 0;
6880
73
            }
6881
6882
173
            if (g->lflags & 0x80) {
6883
107
               stbi__gif_parse_colortable(s,g->lpal, 2 << (g->lflags & 7), g->eflags & 0x01 ? g->transparent : -1);
6884
107
               g->color_table = (stbi_uc *) g->lpal;
6885
107
            } else if (g->flags & 0x80) {
6886
48
               g->color_table = (stbi_uc *) g->pal;
6887
48
            } else
6888
18
               return stbi__errpuc("missing color table", "Corrupt GIF");
6889
6890
155
            o = stbi__process_gif_raster(s, g);
6891
155
            if (!o) return NULL;
6892
6893
            // if this was the first frame,
6894
122
            pcount = g->w * g->h;
6895
122
            if (first_frame && (g->bgindex > 0)) {
6896
               // if first frame, any pixel not drawn to gets the background color
6897
580M
               for (pi = 0; pi < pcount; ++pi) {
6898
580M
                  if (g->history[pi] == 0) {
6899
579M
                     g->pal[g->bgindex][3] = 255; // just in case it was made transparent, undo that; It will be reset next frame if need be;
6900
579M
                     memcpy( &g->out[pi * 4], &g->pal[g->bgindex], 4 );
6901
579M
                  }
6902
580M
               }
6903
113
            }
6904
6905
122
            return o;
6906
155
         }
6907
6908
998
         case 0x21: // Comment Extension.
6909
998
         {
6910
998
            int len;
6911
998
            int ext = stbi__get8(s);
6912
998
            if (ext == 0xF9) { // Graphic Control Extension.
6913
756
               len = stbi__get8(s);
6914
756
               if (len == 4) {
6915
432
                  g->eflags = stbi__get8(s);
6916
432
                  g->delay = 10 * stbi__get16le(s); // delay - 1/100th of a second, saving as 1/1000ths.
6917
6918
                  // unset old transparent
6919
432
                  if (g->transparent >= 0) {
6920
302
                     g->pal[g->transparent][3] = 255;
6921
302
                  }
6922
432
                  if (g->eflags & 0x01) {
6923
321
                     g->transparent = stbi__get8(s);
6924
321
                     if (g->transparent >= 0) {
6925
321
                        g->pal[g->transparent][3] = 0;
6926
321
                     }
6927
321
                  } else {
6928
                     // don't need transparent
6929
111
                     stbi__skip(s, 1);
6930
111
                     g->transparent = -1;
6931
111
                  }
6932
432
               } else {
6933
324
                  stbi__skip(s, len);
6934
324
                  break;
6935
324
               }
6936
756
            }
6937
928
            while ((len = stbi__get8(s)) != 0) {
6938
254
               stbi__skip(s, len);
6939
254
            }
6940
674
            break;
6941
998
         }
6942
6943
3
         case 0x3B: // gif stream termination code
6944
3
            return (stbi_uc *) s; // using '1' causes warning on some compilers
6945
6946
160
         default:
6947
160
            return stbi__errpuc("unknown code", "Corrupt GIF");
6948
1.35k
      }
6949
1.35k
   }
6950
359
}
6951
6952
static void *stbi__load_gif_main_outofmem(stbi__gif *g, stbi_uc *out, int **delays)
6953
0
{
6954
0
   STBI_FREE(g->out);
6955
0
   STBI_FREE(g->history);
6956
0
   STBI_FREE(g->background);
6957
6958
0
   if (out) STBI_FREE(out);
6959
0
   if (delays && *delays) STBI_FREE(*delays);
6960
0
   return stbi__errpuc("outofmem", "Out of memory");
6961
0
}
6962
6963
static void *stbi__load_gif_main(stbi__context *s, int **delays, int *x, int *y, int *z, int *comp, int req_comp)
6964
0
{
6965
0
   if (stbi__gif_test(s)) {
6966
0
      int layers = 0;
6967
0
      stbi_uc *u = 0;
6968
0
      stbi_uc *out = 0;
6969
0
      stbi_uc *two_back = 0;
6970
0
      stbi__gif g;
6971
0
      int stride;
6972
0
      int out_size = 0;
6973
0
      int delays_size = 0;
6974
6975
0
      STBI_NOTUSED(out_size);
6976
0
      STBI_NOTUSED(delays_size);
6977
6978
0
      memset(&g, 0, sizeof(g));
6979
0
      if (delays) {
6980
0
         *delays = 0;
6981
0
      }
6982
6983
0
      do {
6984
0
         u = stbi__gif_load_next(s, &g, comp, req_comp, two_back);
6985
0
         if (u == (stbi_uc *) s) u = 0;  // end of animated gif marker
6986
6987
0
         if (u) {
6988
0
            *x = g.w;
6989
0
            *y = g.h;
6990
0
            ++layers;
6991
0
            stride = g.w * g.h * 4;
6992
6993
0
            if (out) {
6994
0
               void *tmp = (stbi_uc*) STBI_REALLOC_SIZED( out, out_size, layers * stride );
6995
0
               if (!tmp)
6996
0
                  return stbi__load_gif_main_outofmem(&g, out, delays);
6997
0
               else {
6998
0
                   out = (stbi_uc*) tmp;
6999
0
                   out_size = layers * stride;
7000
0
               }
7001
7002
0
               if (delays) {
7003
0
                  int *new_delays = (int*) STBI_REALLOC_SIZED( *delays, delays_size, sizeof(int) * layers );
7004
0
                  if (!new_delays)
7005
0
                     return stbi__load_gif_main_outofmem(&g, out, delays);
7006
0
                  *delays = new_delays;
7007
0
                  delays_size = layers * sizeof(int);
7008
0
               }
7009
0
            } else {
7010
0
               out = (stbi_uc*)stbi__malloc( layers * stride );
7011
0
               if (!out)
7012
0
                  return stbi__load_gif_main_outofmem(&g, out, delays);
7013
0
               out_size = layers * stride;
7014
0
               if (delays) {
7015
0
                  *delays = (int*) stbi__malloc( layers * sizeof(int) );
7016
0
                  if (!*delays)
7017
0
                     return stbi__load_gif_main_outofmem(&g, out, delays);
7018
0
                  delays_size = layers * sizeof(int);
7019
0
               }
7020
0
            }
7021
0
            memcpy( out + ((layers - 1) * stride), u, stride );
7022
0
            if (layers >= 2) {
7023
0
               two_back = out - 2 * stride;
7024
0
            }
7025
7026
0
            if (delays) {
7027
0
               (*delays)[layers - 1U] = g.delay;
7028
0
            }
7029
0
         }
7030
0
      } while (u != 0);
7031
7032
      // free temp buffer;
7033
0
      STBI_FREE(g.out);
7034
0
      STBI_FREE(g.history);
7035
0
      STBI_FREE(g.background);
7036
7037
      // do the final conversion after loading everything;
7038
0
      if (req_comp && req_comp != 4)
7039
0
         out = stbi__convert_format(out, 4, req_comp, layers * g.w, g.h);
7040
7041
0
      *z = layers;
7042
0
      return out;
7043
0
   } else {
7044
0
      return stbi__errpuc("not GIF", "Image was not as a gif type.");
7045
0
   }
7046
0
}
7047
7048
static void *stbi__gif_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
7049
359
{
7050
359
   stbi_uc *u = 0;
7051
359
   stbi__gif g;
7052
359
   memset(&g, 0, sizeof(g));
7053
359
   STBI_NOTUSED(ri);
7054
7055
359
   u = stbi__gif_load_next(s, &g, comp, req_comp, 0);
7056
359
   if (u == (stbi_uc *) s) u = 0;  // end of animated gif marker
7057
359
   if (u) {
7058
122
      *x = g.w;
7059
122
      *y = g.h;
7060
7061
      // moved conversion to after successful load so that the same
7062
      // can be done for multiple frames.
7063
122
      if (req_comp && req_comp != 4)
7064
0
         u = stbi__convert_format(u, 4, req_comp, g.w, g.h);
7065
237
   } else if (g.out) {
7066
      // if there was an error and we allocated an image buffer, free it!
7067
237
      STBI_FREE(g.out);
7068
237
   }
7069
7070
   // free buffers needed for multiple frame loading;
7071
359
   STBI_FREE(g.history);
7072
359
   STBI_FREE(g.background);
7073
7074
359
   return u;
7075
359
}
7076
7077
static int stbi__gif_info(stbi__context *s, int *x, int *y, int *comp)
7078
4.24k
{
7079
4.24k
   return stbi__gif_info_raw(s,x,y,comp);
7080
4.24k
}
7081
#endif
7082
7083
// *************************************************************************************************
7084
// Radiance RGBE HDR loader
7085
// originally by Nicolas Schulz
7086
#ifndef STBI_NO_HDR
7087
static int stbi__hdr_test_core(stbi__context *s, const char *signature)
7088
5.85k
{
7089
5.85k
   int i;
7090
15.1k
   for (i=0; signature[i]; ++i)
7091
14.2k
      if (stbi__get8(s) != signature[i])
7092
4.93k
          return 0;
7093
923
   stbi__rewind(s);
7094
923
   return 1;
7095
5.85k
}
7096
7097
static int stbi__hdr_test(stbi__context* s)
7098
2.93k
{
7099
2.93k
   int r = stbi__hdr_test_core(s, "#?RADIANCE\n");
7100
2.93k
   stbi__rewind(s);
7101
2.93k
   if(!r) {
7102
2.92k
       r = stbi__hdr_test_core(s, "#?RGBE\n");
7103
2.92k
       stbi__rewind(s);
7104
2.92k
   }
7105
2.93k
   return r;
7106
2.93k
}
7107
7108
305k
#define STBI__HDR_BUFLEN  1024
7109
static char *stbi__hdr_gettoken(stbi__context *z, char *buffer)
7110
5.30k
{
7111
5.30k
   int len=0;
7112
5.30k
   char c = '\0';
7113
7114
5.30k
   c = (char) stbi__get8(z);
7115
7116
310k
   while (!stbi__at_eof(z) && c != '\n') {
7117
305k
      buffer[len++] = c;
7118
305k
      if (len == STBI__HDR_BUFLEN-1) {
7119
         // flush to end of line
7120
29.4k
         while (!stbi__at_eof(z) && stbi__get8(z) != '\n')
7121
29.2k
            ;
7122
221
         break;
7123
221
      }
7124
305k
      c = (char) stbi__get8(z);
7125
305k
   }
7126
7127
5.30k
   buffer[len] = 0;
7128
5.30k
   return buffer;
7129
5.30k
}
7130
7131
static void stbi__hdr_convert(float *output, stbi_uc *input, int req_comp)
7132
199M
{
7133
199M
   if ( input[3] != 0 ) {
7134
105k
      float f1;
7135
      // Exponent
7136
105k
      f1 = (float) ldexp(1.0f, input[3] - (int)(128 + 8));
7137
105k
      if (req_comp <= 2)
7138
0
         output[0] = (input[0] + input[1] + input[2]) * f1 / 3;
7139
105k
      else {
7140
105k
         output[0] = input[0] * f1;
7141
105k
         output[1] = input[1] * f1;
7142
105k
         output[2] = input[2] * f1;
7143
105k
      }
7144
105k
      if (req_comp == 2) output[1] = 1;
7145
105k
      if (req_comp == 4) output[3] = 1;
7146
199M
   } else {
7147
199M
      switch (req_comp) {
7148
199M
         case 4: output[3] = 1; /* fallthrough */
7149
199M
         case 3: output[0] = output[1] = output[2] = 0;
7150
199M
                 break;
7151
0
         case 2: output[1] = 1; /* fallthrough */
7152
0
         case 1: output[0] = 0;
7153
0
                 break;
7154
199M
      }
7155
199M
   }
7156
199M
}
7157
7158
static float *stbi__hdr_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
7159
373
{
7160
373
   char buffer[STBI__HDR_BUFLEN];
7161
373
   char *token;
7162
373
   int valid = 0;
7163
373
   int width, height;
7164
373
   stbi_uc *scanline;
7165
373
   float *hdr_data;
7166
373
   int len;
7167
373
   unsigned char count, value;
7168
373
   int i, j, k, c1,c2, z;
7169
373
   const char *headerToken;
7170
373
   STBI_NOTUSED(ri);
7171
7172
   // Check identifier
7173
373
   headerToken = stbi__hdr_gettoken(s,buffer);
7174
373
   if (strcmp(headerToken, "#?RADIANCE") != 0 && strcmp(headerToken, "#?RGBE") != 0)
7175
0
      return stbi__errpf("not HDR", "Corrupt HDR image");
7176
7177
   // Parse header
7178
1.37k
   for(;;) {
7179
1.37k
      token = stbi__hdr_gettoken(s,buffer);
7180
1.37k
      if (token[0] == 0) break;
7181
1.00k
      if (strcmp(token, "FORMAT=32-bit_rle_rgbe") == 0) valid = 1;
7182
1.00k
   }
7183
7184
373
   if (!valid)    return stbi__errpf("unsupported format", "Unsupported HDR format");
7185
7186
   // Parse width and height
7187
   // can't use sscanf() if we're not using stdio!
7188
373
   token = stbi__hdr_gettoken(s,buffer);
7189
373
   if (strncmp(token, "-Y ", 3))  return stbi__errpf("unsupported data layout", "Unsupported HDR format");
7190
373
   token += 3;
7191
373
   height = (int) strtol(token, &token, 10);
7192
567
   while (*token == ' ') ++token;
7193
373
   if (strncmp(token, "+X ", 3))  return stbi__errpf("unsupported data layout", "Unsupported HDR format");
7194
373
   token += 3;
7195
373
   width = (int) strtol(token, NULL, 10);
7196
7197
373
   if (height > STBI_MAX_DIMENSIONS) return stbi__errpf("too large","Very large image (corrupt?)");
7198
370
   if (width > STBI_MAX_DIMENSIONS) return stbi__errpf("too large","Very large image (corrupt?)");
7199
7200
367
   *x = width;
7201
367
   *y = height;
7202
7203
367
   if (comp) *comp = 3;
7204
367
   if (req_comp == 0) req_comp = 3;
7205
7206
367
   if (!stbi__mad4sizes_valid(width, height, req_comp, sizeof(float), 0))
7207
36
      return stbi__errpf("too large", "HDR image is too large");
7208
7209
   // Read data
7210
331
   hdr_data = (float *) stbi__malloc_mad4(width, height, req_comp, sizeof(float), 0);
7211
331
   if (!hdr_data)
7212
0
      return stbi__errpf("outofmem", "Out of memory");
7213
7214
   // Load image data
7215
   // image data is stored as some number of sca
7216
331
   if ( width < 8 || width >= 32768) {
7217
      // Read flat data
7218
234M
      for (j=0; j < height; ++j) {
7219
434M
         for (i=0; i < width; ++i) {
7220
199M
            stbi_uc rgbe[4];
7221
199M
           main_decode_loop:
7222
199M
            stbi__getn(s, rgbe, 4);
7223
199M
            stbi__hdr_convert(hdr_data + j * width * req_comp + i * req_comp, rgbe, req_comp);
7224
199M
         }
7225
234M
      }
7226
175
   } else {
7227
      // Read RLE-encoded data
7228
156
      scanline = NULL;
7229
7230
716
      for (j = 0; j < height; ++j) {
7231
700
         c1 = stbi__get8(s);
7232
700
         c2 = stbi__get8(s);
7233
700
         len = stbi__get8(s);
7234
700
         if (c1 != 2 || c2 != 2 || (len & 0x80)) {
7235
            // not run-length encoded, so we have to actually use THIS data as a decoded
7236
            // pixel (note this can't be a valid pixel--one of RGB must be >= 128)
7237
69
            stbi_uc rgbe[4];
7238
69
            rgbe[0] = (stbi_uc) c1;
7239
69
            rgbe[1] = (stbi_uc) c2;
7240
69
            rgbe[2] = (stbi_uc) len;
7241
69
            rgbe[3] = (stbi_uc) stbi__get8(s);
7242
69
            stbi__hdr_convert(hdr_data, rgbe, req_comp);
7243
69
            i = 1;
7244
69
            j = 0;
7245
69
            STBI_FREE(scanline);
7246
69
            goto main_decode_loop; // yes, this makes no sense
7247
69
         }
7248
631
         len <<= 8;
7249
631
         len |= stbi__get8(s);
7250
631
         if (len != width) { STBI_FREE(hdr_data); STBI_FREE(scanline); return stbi__errpf("invalid decoded scanline length", "corrupt HDR"); }
7251
614
         if (scanline == NULL) {
7252
79
            scanline = (stbi_uc *) stbi__malloc_mad2(width, 4, 0);
7253
79
            if (!scanline) {
7254
0
               STBI_FREE(hdr_data);
7255
0
               return stbi__errpf("outofmem", "Out of memory");
7256
0
            }
7257
79
         }
7258
7259
2.89k
         for (k = 0; k < 4; ++k) {
7260
2.33k
            int nleft;
7261
2.33k
            i = 0;
7262
4.96k
            while ((nleft = width - i) > 0) {
7263
2.69k
               count = stbi__get8(s);
7264
2.69k
               if (count > 128) {
7265
                  // Run
7266
2.46k
                  value = stbi__get8(s);
7267
2.46k
                  count -= 128;
7268
2.46k
                  if ((count == 0) || (count > nleft)) { STBI_FREE(hdr_data); STBI_FREE(scanline); return stbi__errpf("corrupt", "bad RLE data in HDR"); }
7269
197k
                  for (z = 0; z < count; ++z)
7270
195k
                     scanline[i++ * 4 + k] = value;
7271
2.46k
               } else {
7272
                  // Dump
7273
221
                  if ((count == 0) || (count > nleft)) { STBI_FREE(hdr_data); STBI_FREE(scanline); return stbi__errpf("corrupt", "bad RLE data in HDR"); }
7274
2.58k
                  for (z = 0; z < count; ++z)
7275
2.41k
                     scanline[i++ * 4 + k] = stbi__get8(s);
7276
168
               }
7277
2.69k
            }
7278
2.33k
         }
7279
44.2k
         for (i=0; i < width; ++i)
7280
43.6k
            stbi__hdr_convert(hdr_data+(j*width + i)*req_comp, scanline + i*4, req_comp);
7281
560
      }
7282
16
      if (scanline)
7283
3
         STBI_FREE(scanline);
7284
16
   }
7285
7286
260
   return hdr_data;
7287
331
}
7288
7289
static int stbi__hdr_info(stbi__context *s, int *x, int *y, int *comp)
7290
2.34k
{
7291
2.34k
   char buffer[STBI__HDR_BUFLEN];
7292
2.34k
   char *token;
7293
2.34k
   int valid = 0;
7294
2.34k
   int dummy;
7295
7296
2.34k
   if (!x) x = &dummy;
7297
2.34k
   if (!y) y = &dummy;
7298
2.34k
   if (!comp) comp = &dummy;
7299
7300
2.34k
   if (stbi__hdr_test(s) == 0) {
7301
1.79k
       stbi__rewind( s );
7302
1.79k
       return 0;
7303
1.79k
   }
7304
7305
2.76k
   for(;;) {
7306
2.76k
      token = stbi__hdr_gettoken(s,buffer);
7307
2.76k
      if (token[0] == 0) break;
7308
2.21k
      if (strcmp(token, "FORMAT=32-bit_rle_rgbe") == 0) valid = 1;
7309
2.21k
   }
7310
7311
550
   if (!valid) {
7312
132
       stbi__rewind( s );
7313
132
       return 0;
7314
132
   }
7315
418
   token = stbi__hdr_gettoken(s,buffer);
7316
418
   if (strncmp(token, "-Y ", 3)) {
7317
18
       stbi__rewind( s );
7318
18
       return 0;
7319
18
   }
7320
400
   token += 3;
7321
400
   *y = (int) strtol(token, &token, 10);
7322
656
   while (*token == ' ') ++token;
7323
400
   if (strncmp(token, "+X ", 3)) {
7324
24
       stbi__rewind( s );
7325
24
       return 0;
7326
24
   }
7327
376
   token += 3;
7328
376
   *x = (int) strtol(token, NULL, 10);
7329
376
   *comp = 3;
7330
376
   return 1;
7331
400
}
7332
#endif // STBI_NO_HDR
7333
7334
#ifndef STBI_NO_BMP
7335
static int stbi__bmp_info(stbi__context *s, int *x, int *y, int *comp)
7336
3.86k
{
7337
3.86k
   void *p;
7338
3.86k
   stbi__bmp_data info;
7339
7340
3.86k
   info.all_a = 255;
7341
3.86k
   p = stbi__bmp_parse_header(s, &info);
7342
3.86k
   if (p == NULL) {
7343
2.99k
      stbi__rewind( s );
7344
2.99k
      return 0;
7345
2.99k
   }
7346
875
   if (x) *x = s->img_x;
7347
875
   if (y) *y = s->img_y;
7348
875
   if (comp) {
7349
875
      if (info.bpp == 24 && info.ma == 0xff000000)
7350
1
         *comp = 3;
7351
874
      else
7352
874
         *comp = info.ma ? 4 : 3;
7353
875
   }
7354
875
   return 1;
7355
3.86k
}
7356
#endif
7357
7358
#ifndef STBI_NO_PSD
7359
static int stbi__psd_info(stbi__context *s, int *x, int *y, int *comp)
7360
2.99k
{
7361
2.99k
   int channelCount, dummy, depth;
7362
2.99k
   if (!x) x = &dummy;
7363
2.99k
   if (!y) y = &dummy;
7364
2.99k
   if (!comp) comp = &dummy;
7365
2.99k
   if (stbi__get32be(s) != 0x38425053) {
7366
2.71k
       stbi__rewind( s );
7367
2.71k
       return 0;
7368
2.71k
   }
7369
276
   if (stbi__get16be(s) != 1) {
7370
8
       stbi__rewind( s );
7371
8
       return 0;
7372
8
   }
7373
268
   stbi__skip(s, 6);
7374
268
   channelCount = stbi__get16be(s);
7375
268
   if (channelCount < 0 || channelCount > 16) {
7376
6
       stbi__rewind( s );
7377
6
       return 0;
7378
6
   }
7379
262
   *y = stbi__get32be(s);
7380
262
   *x = stbi__get32be(s);
7381
262
   depth = stbi__get16be(s);
7382
262
   if (depth != 8 && depth != 16) {
7383
18
       stbi__rewind( s );
7384
18
       return 0;
7385
18
   }
7386
244
   if (stbi__get16be(s) != 3) {
7387
13
       stbi__rewind( s );
7388
13
       return 0;
7389
13
   }
7390
231
   *comp = 4;
7391
231
   return 1;
7392
244
}
7393
7394
static int stbi__psd_is16(stbi__context *s)
7395
0
{
7396
0
   int channelCount, depth;
7397
0
   if (stbi__get32be(s) != 0x38425053) {
7398
0
       stbi__rewind( s );
7399
0
       return 0;
7400
0
   }
7401
0
   if (stbi__get16be(s) != 1) {
7402
0
       stbi__rewind( s );
7403
0
       return 0;
7404
0
   }
7405
0
   stbi__skip(s, 6);
7406
0
   channelCount = stbi__get16be(s);
7407
0
   if (channelCount < 0 || channelCount > 16) {
7408
0
       stbi__rewind( s );
7409
0
       return 0;
7410
0
   }
7411
0
   STBI_NOTUSED(stbi__get32be(s));
7412
0
   STBI_NOTUSED(stbi__get32be(s));
7413
0
   depth = stbi__get16be(s);
7414
0
   if (depth != 16) {
7415
0
       stbi__rewind( s );
7416
0
       return 0;
7417
0
   }
7418
0
   return 1;
7419
0
}
7420
#endif
7421
7422
#ifndef STBI_NO_PIC
7423
static int stbi__pic_info(stbi__context *s, int *x, int *y, int *comp)
7424
2.76k
{
7425
2.76k
   int act_comp=0,num_packets=0,chained,dummy;
7426
2.76k
   stbi__pic_packet packets[10];
7427
7428
2.76k
   if (!x) x = &dummy;
7429
2.76k
   if (!y) y = &dummy;
7430
2.76k
   if (!comp) comp = &dummy;
7431
7432
2.76k
   if (!stbi__pic_is4(s,"\x53\x80\xF6\x34")) {
7433
2.51k
      stbi__rewind(s);
7434
2.51k
      return 0;
7435
2.51k
   }
7436
7437
249
   stbi__skip(s, 88);
7438
7439
249
   *x = stbi__get16be(s);
7440
249
   *y = stbi__get16be(s);
7441
249
   if (stbi__at_eof(s)) {
7442
1
      stbi__rewind( s);
7443
1
      return 0;
7444
1
   }
7445
248
   if ( (*x) != 0 && (1 << 28) / (*x) < (*y)) {
7446
4
      stbi__rewind( s );
7447
4
      return 0;
7448
4
   }
7449
7450
244
   stbi__skip(s, 8);
7451
7452
340
   do {
7453
340
      stbi__pic_packet *packet;
7454
7455
340
      if (num_packets==sizeof(packets)/sizeof(packets[0]))
7456
1
         return 0;
7457
7458
339
      packet = &packets[num_packets++];
7459
339
      chained = stbi__get8(s);
7460
339
      packet->size    = stbi__get8(s);
7461
339
      packet->type    = stbi__get8(s);
7462
339
      packet->channel = stbi__get8(s);
7463
339
      act_comp |= packet->channel;
7464
7465
339
      if (stbi__at_eof(s)) {
7466
50
          stbi__rewind( s );
7467
50
          return 0;
7468
50
      }
7469
289
      if (packet->size != 8) {
7470
3
          stbi__rewind( s );
7471
3
          return 0;
7472
3
      }
7473
289
   } while (chained);
7474
7475
190
   *comp = (act_comp & 0x10 ? 4 : 3);
7476
7477
190
   return 1;
7478
244
}
7479
#endif
7480
7481
// *************************************************************************************************
7482
// Portable Gray Map and Portable Pixel Map loader
7483
// by Ken Miller
7484
//
7485
// PGM: http://netpbm.sourceforge.net/doc/pgm.html
7486
// PPM: http://netpbm.sourceforge.net/doc/ppm.html
7487
//
7488
// Known limitations:
7489
//    Does not support comments in the header section
7490
//    Does not support ASCII image data (formats P2 and P3)
7491
7492
#ifndef STBI_NO_PNM
7493
7494
static int      stbi__pnm_test(stbi__context *s)
7495
804
{
7496
804
   char p, t;
7497
804
   p = (char) stbi__get8(s);
7498
804
   t = (char) stbi__get8(s);
7499
804
   if (p != 'P' || (t != '5' && t != '6')) {
7500
588
       stbi__rewind( s );
7501
588
       return 0;
7502
588
   }
7503
216
   return 1;
7504
804
}
7505
7506
static void *stbi__pnm_load(stbi__context *s, int *x, int *y, int *comp, int req_comp, stbi__result_info *ri)
7507
216
{
7508
216
   stbi_uc *out;
7509
216
   STBI_NOTUSED(ri);
7510
7511
216
   ri->bits_per_channel = stbi__pnm_info(s, (int *)&s->img_x, (int *)&s->img_y, (int *)&s->img_n);
7512
216
   if (ri->bits_per_channel == 0)
7513
3
      return 0;
7514
7515
213
   if (s->img_y > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
7516
211
   if (s->img_x > STBI_MAX_DIMENSIONS) return stbi__errpuc("too large","Very large image (corrupt?)");
7517
7518
210
   *x = s->img_x;
7519
210
   *y = s->img_y;
7520
210
   if (comp) *comp = s->img_n;
7521
7522
210
   if (!stbi__mad4sizes_valid(s->img_n, s->img_x, s->img_y, ri->bits_per_channel / 8, 0))
7523
0
      return stbi__errpuc("too large", "PNM too large");
7524
7525
210
   out = (stbi_uc *) stbi__malloc_mad4(s->img_n, s->img_x, s->img_y, ri->bits_per_channel / 8, 0);
7526
210
   if (!out) return stbi__errpuc("outofmem", "Out of memory");
7527
210
   if (!stbi__getn(s, out, s->img_n * s->img_x * s->img_y * (ri->bits_per_channel / 8))) {
7528
177
      STBI_FREE(out);
7529
177
      return stbi__errpuc("bad PNM", "PNM file truncated");
7530
177
   }
7531
7532
33
   if (req_comp && req_comp != s->img_n) {
7533
33
      if (ri->bits_per_channel == 16) {
7534
20
         out = (stbi_uc *) stbi__convert_format16((stbi__uint16 *) out, s->img_n, req_comp, s->img_x, s->img_y);
7535
20
      } else {
7536
13
         out = stbi__convert_format(out, s->img_n, req_comp, s->img_x, s->img_y);
7537
13
      }
7538
33
      if (out == NULL) return out; // stbi__convert_format frees input on failure
7539
33
   }
7540
33
   return out;
7541
33
}
7542
7543
static int      stbi__pnm_isspace(char c)
7544
3.75k
{
7545
3.75k
   return c == ' ' || c == '\t' || c == '\n' || c == '\v' || c == '\f' || c == '\r';
7546
3.75k
}
7547
7548
static void     stbi__pnm_skip_whitespace(stbi__context *s, char *c)
7549
1.51k
{
7550
2.00k
   for (;;) {
7551
4.11k
      while (!stbi__at_eof(s) && stbi__pnm_isspace(*c))
7552
2.10k
         *c = (char) stbi__get8(s);
7553
7554
2.00k
      if (stbi__at_eof(s) || *c != '#')
7555
1.51k
         break;
7556
7557
1.40k
      while (!stbi__at_eof(s) && *c != '\n' && *c != '\r' )
7558
916
         *c = (char) stbi__get8(s);
7559
489
   }
7560
1.51k
}
7561
7562
static int      stbi__pnm_isdigit(char c)
7563
3.58k
{
7564
3.58k
   return c >= '0' && c <= '9';
7565
3.58k
}
7566
7567
static int      stbi__pnm_getinteger(stbi__context *s, char *c)
7568
1.51k
{
7569
1.51k
   int value = 0;
7570
7571
4.30k
   while (!stbi__at_eof(s) && stbi__pnm_isdigit(*c)) {
7572
2.80k
      value = value*10 + (*c - '0');
7573
2.80k
      *c = (char) stbi__get8(s);
7574
2.80k
      if((value > 214748364) || (value == 214748364 && *c > '7'))
7575
13
          return stbi__err("integer parse overflow", "Parsing an integer in the PPM header overflowed a 32-bit int");
7576
2.80k
   }
7577
7578
1.50k
   return value;
7579
1.51k
}
7580
7581
static int      stbi__pnm_info(stbi__context *s, int *x, int *y, int *comp)
7582
2.78k
{
7583
2.78k
   int maxv, dummy;
7584
2.78k
   char c, p, t;
7585
7586
2.78k
   if (!x) x = &dummy;
7587
2.78k
   if (!y) y = &dummy;
7588
2.78k
   if (!comp) comp = &dummy;
7589
7590
2.78k
   stbi__rewind(s);
7591
7592
   // Get identifier
7593
2.78k
   p = (char) stbi__get8(s);
7594
2.78k
   t = (char) stbi__get8(s);
7595
2.78k
   if (p != 'P' || (t != '5' && t != '6')) {
7596
2.22k
       stbi__rewind(s);
7597
2.22k
       return 0;
7598
2.22k
   }
7599
7600
566
   *comp = (t == '6') ? 3 : 1;  // '5' is 1-component .pgm; '6' is 3-component .ppm
7601
7602
566
   c = (char) stbi__get8(s);
7603
566
   stbi__pnm_skip_whitespace(s, &c);
7604
7605
566
   *x = stbi__pnm_getinteger(s, &c); // read width
7606
566
   if(*x == 0)
7607
63
       return stbi__err("invalid width", "PPM image header had zero or overflowing width");
7608
503
   stbi__pnm_skip_whitespace(s, &c);
7609
7610
503
   *y = stbi__pnm_getinteger(s, &c); // read height
7611
503
   if (*y == 0)
7612
57
       return stbi__err("invalid width", "PPM image header had zero or overflowing width");
7613
446
   stbi__pnm_skip_whitespace(s, &c);
7614
7615
446
   maxv = stbi__pnm_getinteger(s, &c);  // read max value
7616
446
   if (maxv > 65535)
7617
7
      return stbi__err("max value > 65535", "PPM image supports only 8-bit and 16-bit images");
7618
439
   else if (maxv > 255)
7619
87
      return 16;
7620
352
   else
7621
352
      return 8;
7622
446
}
7623
7624
static int stbi__pnm_is16(stbi__context *s)
7625
0
{
7626
0
   if (stbi__pnm_info(s, NULL, NULL, NULL) == 16)
7627
0
     return 1;
7628
0
   return 0;
7629
0
}
7630
#endif
7631
7632
static int stbi__info_main(stbi__context *s, int *x, int *y, int *comp)
7633
6.45k
{
7634
6.45k
   #ifndef STBI_NO_JPEG
7635
6.45k
   if (stbi__jpeg_info(s, x, y, comp)) return 1;
7636
5.13k
   #endif
7637
7638
5.13k
   #ifndef STBI_NO_PNG
7639
5.13k
   if (stbi__png_info(s, x, y, comp))  return 1;
7640
4.24k
   #endif
7641
7642
4.24k
   #ifndef STBI_NO_GIF
7643
4.24k
   if (stbi__gif_info(s, x, y, comp))  return 1;
7644
3.86k
   #endif
7645
7646
3.86k
   #ifndef STBI_NO_BMP
7647
3.86k
   if (stbi__bmp_info(s, x, y, comp))  return 1;
7648
2.99k
   #endif
7649
7650
2.99k
   #ifndef STBI_NO_PSD
7651
2.99k
   if (stbi__psd_info(s, x, y, comp))  return 1;
7652
2.76k
   #endif
7653
7654
2.76k
   #ifndef STBI_NO_PIC
7655
2.76k
   if (stbi__pic_info(s, x, y, comp))  return 1;
7656
2.57k
   #endif
7657
7658
2.57k
   #ifndef STBI_NO_PNM
7659
2.57k
   if (stbi__pnm_info(s, x, y, comp))  return 1;
7660
2.34k
   #endif
7661
7662
2.34k
   #ifndef STBI_NO_HDR
7663
2.34k
   if (stbi__hdr_info(s, x, y, comp))  return 1;
7664
1.96k
   #endif
7665
7666
   // test tga last because it's a crappy test!
7667
1.96k
   #ifndef STBI_NO_TGA
7668
1.96k
   if (stbi__tga_info(s, x, y, comp))
7669
206
       return 1;
7670
1.76k
   #endif
7671
1.76k
   return stbi__err("unknown image type", "Image not of any known type, or corrupt");
7672
1.96k
}
7673
7674
static int stbi__is_16_main(stbi__context *s)
7675
0
{
7676
0
   #ifndef STBI_NO_PNG
7677
0
   if (stbi__png_is16(s))  return 1;
7678
0
   #endif
7679
7680
0
   #ifndef STBI_NO_PSD
7681
0
   if (stbi__psd_is16(s))  return 1;
7682
0
   #endif
7683
7684
0
   #ifndef STBI_NO_PNM
7685
0
   if (stbi__pnm_is16(s))  return 1;
7686
0
   #endif
7687
0
   return 0;
7688
0
}
7689
7690
#ifndef STBI_NO_STDIO
7691
STBIDEF int stbi_info(char const *filename, int *x, int *y, int *comp)
7692
0
{
7693
0
    FILE *f = stbi__fopen(filename, "rb");
7694
0
    int result;
7695
0
    if (!f) return stbi__err("can't fopen", "Unable to open file");
7696
0
    result = stbi_info_from_file(f, x, y, comp);
7697
0
    fclose(f);
7698
0
    return result;
7699
0
}
7700
7701
STBIDEF int stbi_info_from_file(FILE *f, int *x, int *y, int *comp)
7702
0
{
7703
0
   int r;
7704
0
   stbi__context s;
7705
0
   long pos = ftell(f);
7706
0
   stbi__start_file(&s, f);
7707
0
   r = stbi__info_main(&s,x,y,comp);
7708
0
   fseek(f,pos,SEEK_SET);
7709
0
   return r;
7710
0
}
7711
7712
STBIDEF int stbi_is_16_bit(char const *filename)
7713
0
{
7714
0
    FILE *f = stbi__fopen(filename, "rb");
7715
0
    int result;
7716
0
    if (!f) return stbi__err("can't fopen", "Unable to open file");
7717
0
    result = stbi_is_16_bit_from_file(f);
7718
0
    fclose(f);
7719
0
    return result;
7720
0
}
7721
7722
STBIDEF int stbi_is_16_bit_from_file(FILE *f)
7723
0
{
7724
0
   int r;
7725
0
   stbi__context s;
7726
0
   long pos = ftell(f);
7727
0
   stbi__start_file(&s, f);
7728
0
   r = stbi__is_16_main(&s);
7729
0
   fseek(f,pos,SEEK_SET);
7730
0
   return r;
7731
0
}
7732
#endif // !STBI_NO_STDIO
7733
7734
STBIDEF int stbi_info_from_memory(stbi_uc const *buffer, int len, int *x, int *y, int *comp)
7735
6.69k
{
7736
6.69k
   stbi__context s;
7737
6.69k
   stbi__start_mem(&s,buffer,len);
7738
6.69k
   return stbi__info_main(&s,x,y,comp);
7739
6.69k
}
7740
7741
STBIDEF int stbi_info_from_callbacks(stbi_io_callbacks const *c, void *user, int *x, int *y, int *comp)
7742
0
{
7743
0
   stbi__context s;
7744
0
   stbi__start_callbacks(&s, (stbi_io_callbacks *) c, user);
7745
0
   return stbi__info_main(&s,x,y,comp);
7746
0
}
7747
7748
STBIDEF int stbi_is_16_bit_from_memory(stbi_uc const *buffer, int len)
7749
0
{
7750
0
   stbi__context s;
7751
0
   stbi__start_mem(&s,buffer,len);
7752
0
   return stbi__is_16_main(&s);
7753
0
}
7754
7755
STBIDEF int stbi_is_16_bit_from_callbacks(stbi_io_callbacks const *c, void *user)
7756
0
{
7757
0
   stbi__context s;
7758
0
   stbi__start_callbacks(&s, (stbi_io_callbacks *) c, user);
7759
0
   return stbi__is_16_main(&s);
7760
0
}
7761
7762
#endif // STB_IMAGE_IMPLEMENTATION
7763
7764
/*
7765
   revision history:
7766
      2.20  (2019-02-07) support utf8 filenames in Windows; fix warnings and platform ifdefs
7767
      2.19  (2018-02-11) fix warning
7768
      2.18  (2018-01-30) fix warnings
7769
      2.17  (2018-01-29) change sbti__shiftsigned to avoid clang -O2 bug
7770
                         1-bit BMP
7771
                         *_is_16_bit api
7772
                         avoid warnings
7773
      2.16  (2017-07-23) all functions have 16-bit variants;
7774
                         STBI_NO_STDIO works again;
7775
                         compilation fixes;
7776
                         fix rounding in unpremultiply;
7777
                         optimize vertical flip;
7778
                         disable raw_len validation;
7779
                         documentation fixes
7780
      2.15  (2017-03-18) fix png-1,2,4 bug; now all Imagenet JPGs decode;
7781
                         warning fixes; disable run-time SSE detection on gcc;
7782
                         uniform handling of optional "return" values;
7783
                         thread-safe initialization of zlib tables
7784
      2.14  (2017-03-03) remove deprecated STBI_JPEG_OLD; fixes for Imagenet JPGs
7785
      2.13  (2016-11-29) add 16-bit API, only supported for PNG right now
7786
      2.12  (2016-04-02) fix typo in 2.11 PSD fix that caused crashes
7787
      2.11  (2016-04-02) allocate large structures on the stack
7788
                         remove white matting for transparent PSD
7789
                         fix reported channel count for PNG & BMP
7790
                         re-enable SSE2 in non-gcc 64-bit
7791
                         support RGB-formatted JPEG
7792
                         read 16-bit PNGs (only as 8-bit)
7793
      2.10  (2016-01-22) avoid warning introduced in 2.09 by STBI_REALLOC_SIZED
7794
      2.09  (2016-01-16) allow comments in PNM files
7795
                         16-bit-per-pixel TGA (not bit-per-component)
7796
                         info() for TGA could break due to .hdr handling
7797
                         info() for BMP to shares code instead of sloppy parse
7798
                         can use STBI_REALLOC_SIZED if allocator doesn't support realloc
7799
                         code cleanup
7800
      2.08  (2015-09-13) fix to 2.07 cleanup, reading RGB PSD as RGBA
7801
      2.07  (2015-09-13) fix compiler warnings
7802
                         partial animated GIF support
7803
                         limited 16-bpc PSD support
7804
                         #ifdef unused functions
7805
                         bug with < 92 byte PIC,PNM,HDR,TGA
7806
      2.06  (2015-04-19) fix bug where PSD returns wrong '*comp' value
7807
      2.05  (2015-04-19) fix bug in progressive JPEG handling, fix warning
7808
      2.04  (2015-04-15) try to re-enable SIMD on MinGW 64-bit
7809
      2.03  (2015-04-12) extra corruption checking (mmozeiko)
7810
                         stbi_set_flip_vertically_on_load (nguillemot)
7811
                         fix NEON support; fix mingw support
7812
      2.02  (2015-01-19) fix incorrect assert, fix warning
7813
      2.01  (2015-01-17) fix various warnings; suppress SIMD on gcc 32-bit without -msse2
7814
      2.00b (2014-12-25) fix STBI_MALLOC in progressive JPEG
7815
      2.00  (2014-12-25) optimize JPG, including x86 SSE2 & NEON SIMD (ryg)
7816
                         progressive JPEG (stb)
7817
                         PGM/PPM support (Ken Miller)
7818
                         STBI_MALLOC,STBI_REALLOC,STBI_FREE
7819
                         GIF bugfix -- seemingly never worked
7820
                         STBI_NO_*, STBI_ONLY_*
7821
      1.48  (2014-12-14) fix incorrectly-named assert()
7822
      1.47  (2014-12-14) 1/2/4-bit PNG support, both direct and paletted (Omar Cornut & stb)
7823
                         optimize PNG (ryg)
7824
                         fix bug in interlaced PNG with user-specified channel count (stb)
7825
      1.46  (2014-08-26)
7826
              fix broken tRNS chunk (colorkey-style transparency) in non-paletted PNG
7827
      1.45  (2014-08-16)
7828
              fix MSVC-ARM internal compiler error by wrapping malloc
7829
      1.44  (2014-08-07)
7830
              various warning fixes from Ronny Chevalier
7831
      1.43  (2014-07-15)
7832
              fix MSVC-only compiler problem in code changed in 1.42
7833
      1.42  (2014-07-09)
7834
              don't define _CRT_SECURE_NO_WARNINGS (affects user code)
7835
              fixes to stbi__cleanup_jpeg path
7836
              added STBI_ASSERT to avoid requiring assert.h
7837
      1.41  (2014-06-25)
7838
              fix search&replace from 1.36 that messed up comments/error messages
7839
      1.40  (2014-06-22)
7840
              fix gcc struct-initialization warning
7841
      1.39  (2014-06-15)
7842
              fix to TGA optimization when req_comp != number of components in TGA;
7843
              fix to GIF loading because BMP wasn't rewinding (whoops, no GIFs in my test suite)
7844
              add support for BMP version 5 (more ignored fields)
7845
      1.38  (2014-06-06)
7846
              suppress MSVC warnings on integer casts truncating values
7847
              fix accidental rename of 'skip' field of I/O
7848
      1.37  (2014-06-04)
7849
              remove duplicate typedef
7850
      1.36  (2014-06-03)
7851
              convert to header file single-file library
7852
              if de-iphone isn't set, load iphone images color-swapped instead of returning NULL
7853
      1.35  (2014-05-27)
7854
              various warnings
7855
              fix broken STBI_SIMD path
7856
              fix bug where stbi_load_from_file no longer left file pointer in correct place
7857
              fix broken non-easy path for 32-bit BMP (possibly never used)
7858
              TGA optimization by Arseny Kapoulkine
7859
      1.34  (unknown)
7860
              use STBI_NOTUSED in stbi__resample_row_generic(), fix one more leak in tga failure case
7861
      1.33  (2011-07-14)
7862
              make stbi_is_hdr work in STBI_NO_HDR (as specified), minor compiler-friendly improvements
7863
      1.32  (2011-07-13)
7864
              support for "info" function for all supported filetypes (SpartanJ)
7865
      1.31  (2011-06-20)
7866
              a few more leak fixes, bug in PNG handling (SpartanJ)
7867
      1.30  (2011-06-11)
7868
              added ability to load files via callbacks to accomidate custom input streams (Ben Wenger)
7869
              removed deprecated format-specific test/load functions
7870
              removed support for installable file formats (stbi_loader) -- would have been broken for IO callbacks anyway
7871
              error cases in bmp and tga give messages and don't leak (Raymond Barbiero, grisha)
7872
              fix inefficiency in decoding 32-bit BMP (David Woo)
7873
      1.29  (2010-08-16)
7874
              various warning fixes from Aurelien Pocheville
7875
      1.28  (2010-08-01)
7876
              fix bug in GIF palette transparency (SpartanJ)
7877
      1.27  (2010-08-01)
7878
              cast-to-stbi_uc to fix warnings
7879
      1.26  (2010-07-24)
7880
              fix bug in file buffering for PNG reported by SpartanJ
7881
      1.25  (2010-07-17)
7882
              refix trans_data warning (Won Chun)
7883
      1.24  (2010-07-12)
7884
              perf improvements reading from files on platforms with lock-heavy fgetc()
7885
              minor perf improvements for jpeg
7886
              deprecated type-specific functions so we'll get feedback if they're needed
7887
              attempt to fix trans_data warning (Won Chun)
7888
      1.23    fixed bug in iPhone support
7889
      1.22  (2010-07-10)
7890
              removed image *writing* support
7891
              stbi_info support from Jetro Lauha
7892
              GIF support from Jean-Marc Lienher
7893
              iPhone PNG-extensions from James Brown
7894
              warning-fixes from Nicolas Schulz and Janez Zemva (i.stbi__err. Janez (U+017D)emva)
7895
      1.21    fix use of 'stbi_uc' in header (reported by jon blow)
7896
      1.20    added support for Softimage PIC, by Tom Seddon
7897
      1.19    bug in interlaced PNG corruption check (found by ryg)
7898
      1.18  (2008-08-02)
7899
              fix a threading bug (local mutable static)
7900
      1.17    support interlaced PNG
7901
      1.16    major bugfix - stbi__convert_format converted one too many pixels
7902
      1.15    initialize some fields for thread safety
7903
      1.14    fix threadsafe conversion bug
7904
              header-file-only version (#define STBI_HEADER_FILE_ONLY before including)
7905
      1.13    threadsafe
7906
      1.12    const qualifiers in the API
7907
      1.11    Support installable IDCT, colorspace conversion routines
7908
      1.10    Fixes for 64-bit (don't use "unsigned long")
7909
              optimized upsampling by Fabian "ryg" Giesen
7910
      1.09    Fix format-conversion for PSD code (bad global variables!)
7911
      1.08    Thatcher Ulrich's PSD code integrated by Nicolas Schulz
7912
      1.07    attempt to fix C++ warning/errors again
7913
      1.06    attempt to fix C++ warning/errors again
7914
      1.05    fix TGA loading to return correct *comp and use good luminance calc
7915
      1.04    default float alpha is 1, not 255; use 'void *' for stbi_image_free
7916
      1.03    bugfixes to STBI_NO_STDIO, STBI_NO_HDR
7917
      1.02    support for (subset of) HDR files, float interface for preferred access to them
7918
      1.01    fix bug: possible bug in handling right-side up bmps... not sure
7919
              fix bug: the stbi__bmp_load() and stbi__tga_load() functions didn't work at all
7920
      1.00    interface to zlib that skips zlib header
7921
      0.99    correct handling of alpha in palette
7922
      0.98    TGA loader by lonesock; dynamically add loaders (untested)
7923
      0.97    jpeg errors on too large a file; also catch another malloc failure
7924
      0.96    fix detection of invalid v value - particleman@mollyrocket forum
7925
      0.95    during header scan, seek to markers in case of padding
7926
      0.94    STBI_NO_STDIO to disable stdio usage; rename all #defines the same
7927
      0.93    handle jpegtran output; verbose errors
7928
      0.92    read 4,8,16,24,32-bit BMP files of several formats
7929
      0.91    output 24-bit Windows 3.0 BMP files
7930
      0.90    fix a few more warnings; bump version number to approach 1.0
7931
      0.61    bugfixes due to Marc LeBlanc, Christopher Lloyd
7932
      0.60    fix compiling as c++
7933
      0.59    fix warnings: merge Dave Moore's -Wall fixes
7934
      0.58    fix bug: zlib uncompressed mode len/nlen was wrong endian
7935
      0.57    fix bug: jpg last huffman symbol before marker was >9 bits but less than 16 available
7936
      0.56    fix bug: zlib uncompressed mode len vs. nlen
7937
      0.55    fix bug: restart_interval not initialized to 0
7938
      0.54    allow NULL for 'int *comp'
7939
      0.53    fix bug in png 3->4; speedup png decoding
7940
      0.52    png handles req_comp=3,4 directly; minor cleanup; jpeg comments
7941
      0.51    obey req_comp requests, 1-component jpegs return as 1-component,
7942
              on 'test' only check type, not whether we support this variant
7943
      0.50  (2006-11-19)
7944
              first released version
7945
*/
7946
7947
7948
/*
7949
------------------------------------------------------------------------------
7950
This software is available under 2 licenses -- choose whichever you prefer.
7951
------------------------------------------------------------------------------
7952
ALTERNATIVE A - MIT License
7953
Copyright (c) 2017 Sean Barrett
7954
Permission is hereby granted, free of charge, to any person obtaining a copy of
7955
this software and associated documentation files (the "Software"), to deal in
7956
the Software without restriction, including without limitation the rights to
7957
use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies
7958
of the Software, and to permit persons to whom the Software is furnished to do
7959
so, subject to the following conditions:
7960
The above copyright notice and this permission notice shall be included in all
7961
copies or substantial portions of the Software.
7962
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
7963
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
7964
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
7965
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
7966
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
7967
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
7968
SOFTWARE.
7969
------------------------------------------------------------------------------
7970
ALTERNATIVE B - Public Domain (www.unlicense.org)
7971
This is free and unencumbered software released into the public domain.
7972
Anyone is free to copy, modify, publish, use, compile, sell, or distribute this
7973
software, either in source code form or as a compiled binary, for any purpose,
7974
commercial or non-commercial, and by any means.
7975
In jurisdictions that recognize copyright laws, the author or authors of this
7976
software dedicate any and all copyright interest in the software to the public
7977
domain. We make this dedication for the benefit of the public at large and to
7978
the detriment of our heirs and successors. We intend this dedication to be an
7979
overt act of relinquishment in perpetuity of all present and future rights to
7980
this software under copyright law.
7981
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
7982
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
7983
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
7984
AUTHORS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
7985
ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
7986
WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
7987
------------------------------------------------------------------------------
7988
*/