Coverage Report

Created: 2026-05-30 06:09

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aac/libAACdec/src/aacdec_hcrs.cpp
Line
Count
Source
1
/* -----------------------------------------------------------------------------
2
Software License for The Fraunhofer FDK AAC Codec Library for Android
3
4
© Copyright  1995 - 2020 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
Forschung e.V. All rights reserved.
6
7
 1.    INTRODUCTION
8
The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
10
scheme for digital audio. This FDK AAC Codec software is intended to be used on
11
a wide variety of Android devices.
12
13
AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
14
general perceptual audio codecs. AAC-ELD is considered the best-performing
15
full-bandwidth communications codec by independent studies and is widely
16
deployed. AAC has been standardized by ISO and IEC as part of the MPEG
17
specifications.
18
19
Patent licenses for necessary patent claims for the FDK AAC Codec (including
20
those of Fraunhofer) may be obtained through Via Licensing
21
(www.vialicensing.com) or through the respective patent owners individually for
22
the purpose of encoding or decoding bit streams in products that are compliant
23
with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
24
Android devices already license these patent claims through Via Licensing or
25
directly from the patent owners, and therefore FDK AAC Codec software may
26
already be covered under those patent licenses when it is used for those
27
licensed purposes only.
28
29
Commercially-licensed AAC software libraries, including floating-point versions
30
with enhanced sound quality, are also available from Fraunhofer. Users are
31
encouraged to check the Fraunhofer website for additional applications
32
information and documentation.
33
34
2.    COPYRIGHT LICENSE
35
36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
39
40
You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
42
43
You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
45
your modifications thereto in binary form. You must make available free of
46
charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
48
49
The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
51
52
You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
54
55
Your modified versions of the FDK AAC Codec must carry prominent notices stating
56
that you changed the software and the date of any change. For modified versions
57
of the FDK AAC Codec, the term "Fraunhofer FDK AAC Codec Library for Android"
58
must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
59
AAC Codec Library for Android."
60
61
3.    NO PATENT LICENSE
62
63
NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
64
limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
65
Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
67
68
You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
70
71
4.    DISCLAIMER
72
73
This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
78
or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
80
however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
82
this software, even if advised of the possibility of such damage.
83
84
5.    CONTACT INFORMATION
85
86
Fraunhofer Institute for Integrated Circuits IIS
87
Attention: Audio and Multimedia Departments - FDK AAC LL
88
Am Wolfsmantel 33
89
91058 Erlangen, Germany
90
91
www.iis.fraunhofer.de/amm
92
amm-info@iis.fraunhofer.de
93
----------------------------------------------------------------------------- */
94
95
/**************************** AAC decoder library ******************************
96
97
   Author(s):   Robert Weidner (DSP Solutions)
98
99
   Description: HCR Decoder: Prepare decoding of non-PCWs, segmentation- and
100
                bitfield-handling, HCR-Statemachine
101
102
*******************************************************************************/
103
104
#include "aacdec_hcrs.h"
105
106
#include "aacdec_hcr.h"
107
108
#include "aacdec_hcr_bit.h"
109
#include "aac_rom.h"
110
#include "aac_ram.h"
111
112
static UINT InitSegmentBitfield(UINT *pNumSegment,
113
                                SCHAR *pRemainingBitsInSegment,
114
                                UINT *pSegmentBitfield,
115
                                UCHAR *pNumWordForBitfield,
116
                                USHORT *pNumBitValidInLastWord);
117
118
static void InitNonPCWSideInformationForCurrentSet(H_HCR_INFO pHcr);
119
120
static INT ModuloValue(INT input, INT bufferlength);
121
122
static void ClearBitFromBitfield(STATEFUNC *ptrState, UINT offset,
123
                                 UINT *pBitfield);
124
125
/*---------------------------------------------------------------------------------------------
126
     description: This function decodes all non-priority codewords (non-PCWs) by
127
using a state-machine.
128
--------------------------------------------------------------------------------------------
129
*/
130
6.72k
void DecodeNonPCWs(HANDLE_FDK_BITSTREAM bs, H_HCR_INFO pHcr) {
131
6.72k
  UINT numValidSegment;
132
6.72k
  INT segmentOffset;
133
6.72k
  INT codewordOffsetBase;
134
6.72k
  INT codewordOffset;
135
6.72k
  UINT trial;
136
137
6.72k
  UINT *pNumSegment;
138
6.72k
  SCHAR *pRemainingBitsInSegment;
139
6.72k
  UINT *pSegmentBitfield;
140
6.72k
  UCHAR *pNumWordForBitfield;
141
6.72k
  USHORT *pNumBitValidInLastWord;
142
6.72k
  UINT *pCodewordBitfield;
143
6.72k
  INT bitfieldWord;
144
6.72k
  INT bitInWord;
145
6.72k
  UINT tempWord;
146
6.72k
  UINT interMediateWord;
147
6.72k
  INT tempBit;
148
6.72k
  INT carry;
149
150
6.72k
  UINT numCodeword;
151
6.72k
  UCHAR numSet;
152
6.72k
  UCHAR currentSet;
153
6.72k
  UINT codewordInSet;
154
6.72k
  UINT remainingCodewordsInSet;
155
6.72k
  SCHAR *pSta;
156
6.72k
  UINT ret;
157
158
6.72k
  pNumSegment = &(pHcr->segmentInfo.numSegment);
159
6.72k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
160
6.72k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
161
6.72k
  pNumWordForBitfield = &(pHcr->segmentInfo.numWordForBitfield);
162
6.72k
  pNumBitValidInLastWord = &(pHcr->segmentInfo.pNumBitValidInLastWord);
163
6.72k
  pSta = pHcr->nonPcwSideinfo.pSta;
164
165
6.72k
  numValidSegment = InitSegmentBitfield(pNumSegment, pRemainingBitsInSegment,
166
6.72k
                                        pSegmentBitfield, pNumWordForBitfield,
167
6.72k
                                        pNumBitValidInLastWord);
168
169
6.72k
  if (numValidSegment != 0) {
170
6.37k
    numCodeword = pHcr->sectionInfo.numCodeword;
171
6.37k
    numSet = ((numCodeword - 1) / *pNumSegment) + 1;
172
173
6.37k
    pHcr->segmentInfo.readDirection = FROM_RIGHT_TO_LEFT;
174
175
    /* Process sets subsequently */
176
6.37k
    numSet = fMin(numSet, (UCHAR)MAX_HCR_SETS);
177
40.1k
    for (currentSet = 1; currentSet < numSet; currentSet++) {
178
179
      /* step 1 */
180
34.9k
      numCodeword -=
181
34.9k
          *pNumSegment; /* number of remaining non PCWs [for all sets] */
182
34.9k
      if (numCodeword < *pNumSegment) {
183
4.04k
        codewordInSet = numCodeword; /* for last set */
184
30.8k
      } else {
185
30.8k
        codewordInSet = *pNumSegment; /* for all sets except last set */
186
30.8k
      }
187
188
      /* step 2 */
189
      /* prepare array 'CodewordBitfield'; as much ones are written from left in
190
       * all words, as much decodedCodewordInSetCounter nonPCWs exist in this
191
       * set */
192
34.9k
      tempWord = 0xFFFFFFFF;
193
34.9k
      pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
194
195
78.5k
      for (bitfieldWord = *pNumWordForBitfield; bitfieldWord != 0;
196
43.6k
           bitfieldWord--) { /* loop over all used words */
197
43.6k
        if (codewordInSet > NUMBER_OF_BIT_IN_WORD) { /* more codewords than
198
                                                        number of bits => fill
199
                                                        ones */
200
          /* fill a whole word with ones */
201
4.46k
          *pCodewordBitfield++ = tempWord;
202
4.46k
          codewordInSet -= NUMBER_OF_BIT_IN_WORD; /* subtract number of bits */
203
39.1k
        } else {
204
          /* prepare last tempWord */
205
39.1k
          for (remainingCodewordsInSet = codewordInSet;
206
913k
               remainingCodewordsInSet < NUMBER_OF_BIT_IN_WORD;
207
874k
               remainingCodewordsInSet++) {
208
874k
            tempWord =
209
874k
                tempWord &
210
874k
                ~(1
211
874k
                  << (NUMBER_OF_BIT_IN_WORD - 1 -
212
874k
                      remainingCodewordsInSet)); /* set a zero at bit number
213
                                                    (NUMBER_OF_BIT_IN_WORD-1-i)
214
                                                    in tempWord */
215
874k
          }
216
39.1k
          *pCodewordBitfield++ = tempWord;
217
39.1k
          tempWord = 0x00000000;
218
39.1k
        }
219
43.6k
      }
220
34.9k
      pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
221
222
      /* step 3 */
223
      /* build non-PCW sideinfo for each non-PCW of the current set */
224
34.9k
      InitNonPCWSideInformationForCurrentSet(pHcr);
225
226
      /* step 4 */
227
      /* decode all non-PCWs belonging to this set */
228
229
      /* loop over trials */
230
34.9k
      codewordOffsetBase = 0;
231
470k
      for (trial = *pNumSegment; trial > 0; trial--) {
232
        /* loop over number of words in bitfields */
233
436k
        segmentOffset = 0; /* start at zero in every segment */
234
436k
        pHcr->segmentInfo.segmentOffset =
235
436k
            segmentOffset; /* store in structure for states */
236
436k
        codewordOffset = codewordOffsetBase;
237
436k
        pHcr->nonPcwSideinfo.codewordOffset =
238
436k
            codewordOffset; /* store in structure for states */
239
240
1.97M
        for (bitfieldWord = 0; bitfieldWord < *pNumWordForBitfield;
241
1.53M
             bitfieldWord++) {
242
          /* derive tempWord with bitwise and */
243
1.53M
          tempWord =
244
1.53M
              pSegmentBitfield[bitfieldWord] & pCodewordBitfield[bitfieldWord];
245
246
          /* if tempWord is not zero, decode something */
247
1.53M
          if (tempWord != 0) {
248
            /* loop over all bits in tempWord; start state machine if & is true
249
             */
250
2.17M
            for (bitInWord = NUMBER_OF_BIT_IN_WORD; bitInWord > 0;
251
2.11M
                 bitInWord--) {
252
2.11M
              interMediateWord = ((UINT)1 << (bitInWord - 1));
253
2.11M
              if ((tempWord & interMediateWord) == interMediateWord) {
254
                /* get state and start state machine */
255
263k
                pHcr->nonPcwSideinfo.pState =
256
263k
                    aStateConstant2State[pSta[codewordOffset]];
257
258
631k
                while (pHcr->nonPcwSideinfo.pState) {
259
370k
                  ret = ((STATEFUNC)pHcr->nonPcwSideinfo.pState)(bs, pHcr);
260
370k
                  if (ret != 0) {
261
1.16k
                    return;
262
1.16k
                  }
263
370k
                }
264
263k
              }
265
266
              /* update both offsets */
267
2.11M
              segmentOffset += 1; /* add NUMBER_OF_BIT_IN_WORD times one */
268
2.11M
              pHcr->segmentInfo.segmentOffset = segmentOffset;
269
2.11M
              codewordOffset += 1; /* add NUMBER_OF_BIT_IN_WORD times one */
270
2.11M
              codewordOffset =
271
2.11M
                  ModuloValue(codewordOffset,
272
2.11M
                              *pNumSegment); /* index of the current codeword
273
                                                lies within modulo range */
274
2.11M
              pHcr->nonPcwSideinfo.codewordOffset = codewordOffset;
275
2.11M
            }
276
1.47M
          } else {
277
1.47M
            segmentOffset +=
278
1.47M
                NUMBER_OF_BIT_IN_WORD; /* add NUMBER_OF_BIT_IN_WORD at once */
279
1.47M
            pHcr->segmentInfo.segmentOffset = segmentOffset;
280
1.47M
            codewordOffset +=
281
1.47M
                NUMBER_OF_BIT_IN_WORD; /* add NUMBER_OF_BIT_IN_WORD at once */
282
1.47M
            codewordOffset = ModuloValue(
283
1.47M
                codewordOffset,
284
1.47M
                *pNumSegment); /* index of the current codeword lies within
285
                                  modulo range */
286
1.47M
            pHcr->nonPcwSideinfo.codewordOffset = codewordOffset;
287
1.47M
          }
288
1.53M
        } /* end of bitfield word loop */
289
290
        /* decrement codeword - pointer */
291
435k
        codewordOffsetBase -= 1;
292
435k
        codewordOffsetBase =
293
435k
            ModuloValue(codewordOffsetBase, *pNumSegment); /* index of the
294
                                                              current codeword
295
                                                              base lies within
296
                                                              modulo range */
297
298
        /* rotate numSegment bits in codewordBitfield */
299
        /* rotation of *numSegment bits in bitfield of codewords
300
         * (circle-rotation) */
301
        /* get last valid bit */
302
435k
        tempBit = pCodewordBitfield[*pNumWordForBitfield - 1] &
303
435k
                  (1 << (NUMBER_OF_BIT_IN_WORD - *pNumBitValidInLastWord));
304
435k
        tempBit = tempBit >> (NUMBER_OF_BIT_IN_WORD - *pNumBitValidInLastWord);
305
306
        /* write zero into place where tempBit was fetched from */
307
435k
        pCodewordBitfield[*pNumWordForBitfield - 1] =
308
435k
            pCodewordBitfield[*pNumWordForBitfield - 1] &
309
435k
            ~(1 << (NUMBER_OF_BIT_IN_WORD - *pNumBitValidInLastWord));
310
311
        /* rotate last valid word */
312
435k
        pCodewordBitfield[*pNumWordForBitfield - 1] =
313
435k
            pCodewordBitfield[*pNumWordForBitfield - 1] >> 1;
314
315
        /* transfare carry bit 0 from current word into bitposition 31 from next
316
         * word and rotate current word */
317
1.53M
        for (bitfieldWord = *pNumWordForBitfield - 2; bitfieldWord > -1;
318
1.10M
             bitfieldWord--) {
319
          /* get carry (=bit at position 0) from current word */
320
1.10M
          carry = pCodewordBitfield[bitfieldWord] & 1;
321
322
          /* put the carry bit at position 31 into word right from current word
323
           */
324
1.10M
          pCodewordBitfield[bitfieldWord + 1] =
325
1.10M
              pCodewordBitfield[bitfieldWord + 1] |
326
1.10M
              (carry << (NUMBER_OF_BIT_IN_WORD - 1));
327
328
          /* shift current word */
329
1.10M
          pCodewordBitfield[bitfieldWord] =
330
1.10M
              pCodewordBitfield[bitfieldWord] >> 1;
331
1.10M
        }
332
333
        /* put tempBit into free bit-position 31 from first word */
334
435k
        pCodewordBitfield[0] =
335
435k
            pCodewordBitfield[0] | (tempBit << (NUMBER_OF_BIT_IN_WORD - 1));
336
337
435k
      } /* end of trial loop */
338
339
      /* toggle read direction */
340
33.7k
      pHcr->segmentInfo.readDirection =
341
33.7k
          ToggleReadDirection(pHcr->segmentInfo.readDirection);
342
33.7k
    }
343
    /* end of set loop */
344
345
    /* all non-PCWs of this spectrum are decoded */
346
6.37k
  }
347
348
  /* all PCWs and all non PCWs are decoded. They are unbacksorted in output
349
   * buffer. Here is the Interface with comparing QSCs to asm decoding */
350
6.72k
}
351
352
/*---------------------------------------------------------------------------------------------
353
     description:   This function prepares the bitfield used for the
354
                    segments. The list is set up once to be used in all
355
following sets. If a segment is decoded empty, the according bit from the
356
Bitfield is removed.
357
-----------------------------------------------------------------------------------------------
358
        return:     numValidSegment = the number of valid segments
359
--------------------------------------------------------------------------------------------
360
*/
361
static UINT InitSegmentBitfield(UINT *pNumSegment,
362
                                SCHAR *pRemainingBitsInSegment,
363
                                UINT *pSegmentBitfield,
364
                                UCHAR *pNumWordForBitfield,
365
6.72k
                                USHORT *pNumBitValidInLastWord) {
366
6.72k
  SHORT i;
367
6.72k
  USHORT r;
368
6.72k
  UCHAR bitfieldWord;
369
6.72k
  UINT tempWord;
370
6.72k
  USHORT numValidSegment;
371
372
6.72k
  *pNumWordForBitfield =
373
6.72k
      (*pNumSegment == 0)
374
6.72k
          ? 0
375
6.72k
          : ((*pNumSegment - 1) >> THIRTYTWO_LOG_DIV_TWO_LOG) + 1;
376
377
  /* loop over all words, which are completely used or only partial */
378
  /* bit in pSegmentBitfield is zero if segment is empty; bit in
379
   * pSegmentBitfield is one if segment is not empty */
380
6.72k
  numValidSegment = 0;
381
6.72k
  *pNumBitValidInLastWord = *pNumSegment;
382
383
  /* loop over words */
384
14.1k
  for (bitfieldWord = 0; bitfieldWord < *pNumWordForBitfield - 1;
385
7.47k
       bitfieldWord++) {
386
7.47k
    tempWord = 0xFFFFFFFF; /* set ones */
387
7.47k
    r = bitfieldWord << THIRTYTWO_LOG_DIV_TWO_LOG;
388
246k
    for (i = 0; i < NUMBER_OF_BIT_IN_WORD; i++) {
389
239k
      if (pRemainingBitsInSegment[r + i] == 0) {
390
21.1k
        tempWord = tempWord & ~(1 << (NUMBER_OF_BIT_IN_WORD - 1 -
391
21.1k
                                      i)); /* set a zero at bit number
392
                                              (NUMBER_OF_BIT_IN_WORD-1-i) in
393
                                              tempWord */
394
218k
      } else {
395
218k
        numValidSegment += 1; /* count segments which are not empty */
396
218k
      }
397
239k
    }
398
7.47k
    pSegmentBitfield[bitfieldWord] = tempWord;        /* store result */
399
7.47k
    *pNumBitValidInLastWord -= NUMBER_OF_BIT_IN_WORD; /* calculate number of
400
                                                         zeros on LSB side in
401
                                                         the last word */
402
7.47k
  }
403
404
  /* calculate last word: prepare special tempWord */
405
6.72k
  tempWord = 0xFFFFFFFF;
406
123k
  for (i = 0; i < (NUMBER_OF_BIT_IN_WORD - *pNumBitValidInLastWord); i++) {
407
116k
    tempWord = tempWord & ~(1 << i); /* clear bit i in tempWord */
408
116k
  }
409
410
  /* calculate last word */
411
6.72k
  r = bitfieldWord << THIRTYTWO_LOG_DIV_TWO_LOG;
412
104k
  for (i = 0; i < *pNumBitValidInLastWord; i++) {
413
98.1k
    if (pRemainingBitsInSegment[r + i] == 0) {
414
7.61k
      tempWord = tempWord & ~(1 << (NUMBER_OF_BIT_IN_WORD - 1 -
415
7.61k
                                    i)); /* set a zero at bit number
416
                                            (NUMBER_OF_BIT_IN_WORD-1-i) in
417
                                            tempWord */
418
90.5k
    } else {
419
90.5k
      numValidSegment += 1; /* count segments which are not empty */
420
90.5k
    }
421
98.1k
  }
422
6.72k
  pSegmentBitfield[bitfieldWord] = tempWord; /* store result */
423
424
6.72k
  return numValidSegment;
425
6.72k
}
426
427
/*---------------------------------------------------------------------------------------------
428
  description:  This function sets up sideinfo for the non-PCW decoder (for the
429
current set).
430
---------------------------------------------------------------------------------------------*/
431
34.9k
static void InitNonPCWSideInformationForCurrentSet(H_HCR_INFO pHcr) {
432
34.9k
  USHORT i, k;
433
34.9k
  UCHAR codebookDim;
434
34.9k
  UINT startNode;
435
436
34.9k
  UCHAR *pCodebook = pHcr->nonPcwSideinfo.pCodebook;
437
34.9k
  UINT *iNode = pHcr->nonPcwSideinfo.iNode;
438
34.9k
  UCHAR *pCntSign = pHcr->nonPcwSideinfo.pCntSign;
439
34.9k
  USHORT *iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
440
34.9k
  UINT *pEscapeSequenceInfo = pHcr->nonPcwSideinfo.pEscapeSequenceInfo;
441
34.9k
  SCHAR *pSta = pHcr->nonPcwSideinfo.pSta;
442
34.9k
  USHORT *pNumExtendedSortedCodewordInSection =
443
34.9k
      pHcr->sectionInfo.pNumExtendedSortedCodewordInSection;
444
34.9k
  int numExtendedSortedCodewordInSectionIdx =
445
34.9k
      pHcr->sectionInfo.numExtendedSortedCodewordInSectionIdx;
446
34.9k
  UCHAR *pExtendedSortedCodebook = pHcr->sectionInfo.pExtendedSortedCodebook;
447
34.9k
  int extendedSortedCodebookIdx = pHcr->sectionInfo.extendedSortedCodebookIdx;
448
34.9k
  USHORT *pNumExtendedSortedSectionsInSets =
449
34.9k
      pHcr->sectionInfo.pNumExtendedSortedSectionsInSets;
450
34.9k
  int numExtendedSortedSectionsInSetsIdx =
451
34.9k
      pHcr->sectionInfo.numExtendedSortedSectionsInSetsIdx;
452
34.9k
  int quantizedSpectralCoefficientsIdx =
453
34.9k
      pHcr->decInOut.quantizedSpectralCoefficientsIdx;
454
34.9k
  const UCHAR *pCbDimension = aDimCb;
455
34.9k
  int iterationCounter = 0;
456
457
  /* loop over number of extended sorted sections in the current set so all
458
   * codewords sideinfo variables within this set can be prepared for decoding
459
   */
460
34.9k
  for (i = pNumExtendedSortedSectionsInSets[numExtendedSortedSectionsInSetsIdx];
461
78.1k
       i != 0; i--) {
462
43.5k
    codebookDim =
463
43.5k
        pCbDimension[pExtendedSortedCodebook[extendedSortedCodebookIdx]];
464
43.5k
    startNode = *aHuffTable[pExtendedSortedCodebook[extendedSortedCodebookIdx]];
465
466
43.5k
    for (k = pNumExtendedSortedCodewordInSection
467
43.5k
             [numExtendedSortedCodewordInSectionIdx];
468
544k
         k != 0; k--) {
469
501k
      iterationCounter++;
470
501k
      if (iterationCounter > (1024 >> 2)) {
471
7
        return;
472
7
      }
473
501k
      *pSta++ = aCodebook2StartInt
474
501k
          [pExtendedSortedCodebook[extendedSortedCodebookIdx]];
475
501k
      *pCodebook++ = pExtendedSortedCodebook[extendedSortedCodebookIdx];
476
501k
      *iNode++ = startNode;
477
501k
      *pCntSign++ = 0;
478
501k
      *iResultPointer++ = quantizedSpectralCoefficientsIdx;
479
501k
      *pEscapeSequenceInfo++ = 0;
480
501k
      quantizedSpectralCoefficientsIdx +=
481
501k
          codebookDim; /* update pointer by codebookDim --> point to next
482
                          starting value for writing out */
483
501k
      if (quantizedSpectralCoefficientsIdx >= 1024) {
484
392
        return;
485
392
      }
486
501k
    }
487
43.1k
    numExtendedSortedCodewordInSectionIdx++; /* inc ptr for next ext sort sec in
488
                                                current set */
489
43.1k
    extendedSortedCodebookIdx++; /* inc ptr for next ext sort sec in current set
490
                                  */
491
43.1k
    if (numExtendedSortedCodewordInSectionIdx >= (MAX_SFB_HCR + MAX_HCR_SETS) ||
492
43.1k
        extendedSortedCodebookIdx >= (MAX_SFB_HCR + MAX_HCR_SETS)) {
493
0
      return;
494
0
    }
495
43.1k
  }
496
34.5k
  numExtendedSortedSectionsInSetsIdx++; /* inc ptr for next set of non-PCWs */
497
34.5k
  if (numExtendedSortedCodewordInSectionIdx >= (MAX_SFB_HCR + MAX_HCR_SETS)) {
498
0
    return;
499
0
  }
500
501
  /* Write back indexes */
502
34.5k
  pHcr->sectionInfo.numExtendedSortedCodewordInSectionIdx =
503
34.5k
      numExtendedSortedCodewordInSectionIdx;
504
34.5k
  pHcr->sectionInfo.extendedSortedCodebookIdx = extendedSortedCodebookIdx;
505
34.5k
  pHcr->sectionInfo.numExtendedSortedSectionsInSetsIdx =
506
34.5k
      numExtendedSortedSectionsInSetsIdx;
507
34.5k
  pHcr->sectionInfo.numExtendedSortedCodewordInSectionIdx =
508
34.5k
      numExtendedSortedCodewordInSectionIdx;
509
34.5k
  pHcr->decInOut.quantizedSpectralCoefficientsIdx =
510
34.5k
      quantizedSpectralCoefficientsIdx;
511
34.5k
}
512
513
/*---------------------------------------------------------------------------------------------
514
     description: This function returns the input value if the value is in the
515
                  range of bufferlength. If <input> is smaller, one bufferlength
516
is added, if <input> is bigger one bufferlength is subtracted.
517
-----------------------------------------------------------------------------------------------
518
        return:   modulo result
519
--------------------------------------------------------------------------------------------
520
*/
521
4.01M
static INT ModuloValue(INT input, INT bufferlength) {
522
4.01M
  if (input > (bufferlength - 1)) {
523
528k
    return (input - bufferlength);
524
528k
  }
525
3.48M
  if (input < 0) {
526
33.7k
    return (input + bufferlength);
527
33.7k
  }
528
3.45M
  return input;
529
3.48M
}
530
531
/*---------------------------------------------------------------------------------------------
532
     description: This function clears a bit from current bitfield and
533
                  switches off the statemachine.
534
535
                  A bit is cleared in two cases:
536
                  a) a codeword is decoded, then a bit is cleared in codeword
537
bitfield b) a segment is decoded empty, then a bit is cleared in segment
538
bitfield
539
--------------------------------------------------------------------------------------------
540
*/
541
static void ClearBitFromBitfield(STATEFUNC *ptrState, UINT offset,
542
295k
                                 UINT *pBitfield) {
543
295k
  UINT numBitfieldWord;
544
295k
  UINT numBitfieldBit;
545
546
  /* get both values needed for clearing the bit */
547
295k
  numBitfieldWord = offset >> THIRTYTWO_LOG_DIV_TWO_LOG; /* int   = wordNr */
548
295k
  numBitfieldBit = offset - (numBitfieldWord
549
295k
                             << THIRTYTWO_LOG_DIV_TWO_LOG); /* fract = bitNr  */
550
551
  /* clear a bit in bitfield */
552
295k
  pBitfield[numBitfieldWord] =
553
295k
      pBitfield[numBitfieldWord] &
554
295k
      ~(1 << (NUMBER_OF_BIT_IN_WORD - 1 - numBitfieldBit));
555
556
  /* switch off state machine because codeword is decoded and/or because segment
557
   * is empty */
558
295k
  *ptrState = NULL;
559
295k
}
560
561
/* =========================================================================================
562
                              the states of the statemachine
563
   =========================================================================================
564
 */
565
566
/*---------------------------------------------------------------------------------------------
567
     description:  Decodes the body of a codeword. This State is used for
568
codebooks 1,2,5 and 6. No sign bits are decoded, because the table of the
569
quantized spectral values has got a valid sign at the quantized spectral lines.
570
-----------------------------------------------------------------------------------------------
571
        output:   Two or four quantizes spectral values written at position
572
where pResultPointr points to
573
-----------------------------------------------------------------------------------------------
574
        return:   0
575
--------------------------------------------------------------------------------------------
576
*/
577
47.8k
UINT Hcr_State_BODY_ONLY(HANDLE_FDK_BITSTREAM bs, void *ptr) {
578
47.8k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
579
47.8k
  UINT *pSegmentBitfield;
580
47.8k
  UINT *pCodewordBitfield;
581
47.8k
  UINT segmentOffset;
582
47.8k
  FIXP_DBL *pResultBase;
583
47.8k
  UINT *iNode;
584
47.8k
  USHORT *iResultPointer;
585
47.8k
  UINT codewordOffset;
586
47.8k
  UINT branchNode;
587
47.8k
  UINT branchValue;
588
47.8k
  UINT iQSC;
589
47.8k
  UINT treeNode;
590
47.8k
  UCHAR carryBit;
591
47.8k
  INT *pLeftStartOfSegment;
592
47.8k
  INT *pRightStartOfSegment;
593
47.8k
  SCHAR *pRemainingBitsInSegment;
594
47.8k
  UCHAR readDirection;
595
47.8k
  UCHAR *pCodebook;
596
47.8k
  UCHAR dimCntr;
597
47.8k
  const UINT *pCurrentTree;
598
47.8k
  const UCHAR *pCbDimension;
599
47.8k
  const SCHAR *pQuantVal;
600
47.8k
  const SCHAR *pQuantValBase;
601
602
47.8k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
603
47.8k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
604
47.8k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
605
47.8k
  readDirection = pHcr->segmentInfo.readDirection;
606
47.8k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
607
47.8k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
608
47.8k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
609
610
47.8k
  pCodebook = pHcr->nonPcwSideinfo.pCodebook;
611
47.8k
  iNode = pHcr->nonPcwSideinfo.iNode;
612
47.8k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
613
47.8k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
614
47.8k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
615
616
47.8k
  pCbDimension = aDimCb;
617
618
47.8k
  treeNode = iNode[codewordOffset];
619
47.8k
  pCurrentTree = aHuffTable[pCodebook[codewordOffset]];
620
621
106k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
622
102k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
623
102k
    carryBit = HcrGetABitFromBitstream(
624
102k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
625
102k
        &pRightStartOfSegment[segmentOffset], readDirection);
626
627
102k
    CarryBitToBranchValue(carryBit, /* make a step in decoding tree */
628
102k
                          treeNode, &branchValue, &branchNode);
629
630
    /* if end of branch reached write out lines and count bits needed for sign,
631
     * otherwise store node in codeword sideinfo */
632
102k
    if ((branchNode & TEST_BIT_10) ==
633
102k
        TEST_BIT_10) { /* test bit 10 ; ==> body is complete */
634
43.7k
      pQuantValBase = aQuantTable[pCodebook[codewordOffset]]; /* get base
635
                                                                 address of
636
                                                                 quantized
637
                                                                 values
638
                                                                 belonging to
639
                                                                 current
640
                                                                 codebook */
641
43.7k
      pQuantVal = pQuantValBase + branchValue; /* set pointer to first valid
642
                                                  line [of 2 or 4 quantized
643
                                                  values] */
644
645
43.7k
      iQSC = iResultPointer[codewordOffset]; /* get position of first line for
646
                                                writing out result */
647
648
133k
      for (dimCntr = pCbDimension[pCodebook[codewordOffset]]; dimCntr != 0;
649
89.7k
           dimCntr--) {
650
89.7k
        pResultBase[iQSC++] =
651
89.7k
            (FIXP_DBL)*pQuantVal++; /* write out 2 or 4 lines into
652
                                       spectrum; no Sign bits
653
                                       available in this state */
654
89.7k
      }
655
656
43.7k
      ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
657
43.7k
                           pCodewordBitfield); /* clear a bit in bitfield and
658
                                                  switch off statemachine */
659
43.7k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
660
                                                      for loop counter (see
661
                                                      above) is done here */
662
43.7k
      break; /* end of branch in tree reached  i.e. a whole nonPCW-Body is
663
                decoded */
664
58.3k
    } else { /* body is not decoded completely: */
665
58.3k
      treeNode = *(
666
58.3k
          pCurrentTree +
667
58.3k
          branchValue); /* update treeNode for further step in decoding tree */
668
58.3k
    }
669
102k
  }
670
47.8k
  iNode[codewordOffset] = treeNode; /* store updated treeNode because maybe
671
                                       decoding of codeword body not finished
672
                                       yet */
673
674
47.8k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
675
5.80k
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
676
5.80k
                         pSegmentBitfield); /* clear a bit in bitfield and
677
                                               switch off statemachine */
678
679
5.80k
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
680
1
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_ONLY;
681
1
      return BODY_ONLY;
682
1
    }
683
5.80k
  }
684
685
47.8k
  return STOP_THIS_STATE;
686
47.8k
}
687
688
/*---------------------------------------------------------------------------------------------
689
     description: Decodes the codeword body, writes out result and counts the
690
number of quantized spectral values, which are different form zero. For those
691
values sign bits are needed.
692
693
                  If sign bit counter cntSign is different from zero, switch to
694
next state to decode sign Bits there. If sign bit counter cntSign is zero, no
695
sign bits are needed and codeword is decoded.
696
-----------------------------------------------------------------------------------------------
697
        output:   Two or four written quantizes spectral values written at
698
position where pResultPointr points to. The signs of those lines may be wrong.
699
If the signs [on just one signle sign] is wrong, the next state will correct it.
700
-----------------------------------------------------------------------------------------------
701
        return:   0
702
--------------------------------------------------------------------------------------------
703
*/
704
147k
UINT Hcr_State_BODY_SIGN__BODY(HANDLE_FDK_BITSTREAM bs, void *ptr) {
705
147k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
706
147k
  SCHAR *pRemainingBitsInSegment;
707
147k
  INT *pLeftStartOfSegment;
708
147k
  INT *pRightStartOfSegment;
709
147k
  UCHAR readDirection;
710
147k
  UINT *pSegmentBitfield;
711
147k
  UINT *pCodewordBitfield;
712
147k
  UINT segmentOffset;
713
714
147k
  UCHAR *pCodebook;
715
147k
  UINT *iNode;
716
147k
  UCHAR *pCntSign;
717
147k
  FIXP_DBL *pResultBase;
718
147k
  USHORT *iResultPointer;
719
147k
  UINT codewordOffset;
720
721
147k
  UINT iQSC;
722
147k
  UINT cntSign;
723
147k
  UCHAR dimCntr;
724
147k
  UCHAR carryBit;
725
147k
  SCHAR *pSta;
726
147k
  UINT treeNode;
727
147k
  UINT branchValue;
728
147k
  UINT branchNode;
729
147k
  const UCHAR *pCbDimension;
730
147k
  const UINT *pCurrentTree;
731
147k
  const SCHAR *pQuantValBase;
732
147k
  const SCHAR *pQuantVal;
733
734
147k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
735
147k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
736
147k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
737
147k
  readDirection = pHcr->segmentInfo.readDirection;
738
147k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
739
147k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
740
147k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
741
742
147k
  pCodebook = pHcr->nonPcwSideinfo.pCodebook;
743
147k
  iNode = pHcr->nonPcwSideinfo.iNode;
744
147k
  pCntSign = pHcr->nonPcwSideinfo.pCntSign;
745
147k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
746
147k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
747
147k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
748
147k
  pSta = pHcr->nonPcwSideinfo.pSta;
749
750
147k
  pCbDimension = aDimCb;
751
752
147k
  treeNode = iNode[codewordOffset];
753
147k
  pCurrentTree = aHuffTable[pCodebook[codewordOffset]];
754
755
541k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
756
513k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
757
513k
    carryBit = HcrGetABitFromBitstream(
758
513k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
759
513k
        &pRightStartOfSegment[segmentOffset], readDirection);
760
761
513k
    CarryBitToBranchValue(carryBit, /* make a step in decoding tree */
762
513k
                          treeNode, &branchValue, &branchNode);
763
764
    /* if end of branch reached write out lines and count bits needed for sign,
765
     * otherwise store node in codeword sideinfo */
766
513k
    if ((branchNode & TEST_BIT_10) ==
767
513k
        TEST_BIT_10) { /* test bit 10 ; if set body complete */
768
      /* body completely decoded; branchValue is valid, set pQuantVal to first
769
       * (of two or four) quantized spectral coefficients */
770
118k
      pQuantValBase = aQuantTable[pCodebook[codewordOffset]]; /* get base
771
                                                                 address of
772
                                                                 quantized
773
                                                                 values
774
                                                                 belonging to
775
                                                                 current
776
                                                                 codebook */
777
118k
      pQuantVal = pQuantValBase + branchValue; /* set pointer to first valid
778
                                                  line [of 2 or 4 quantized
779
                                                  values] */
780
781
118k
      iQSC = iResultPointer[codewordOffset]; /* get position of first line for
782
                                                writing result */
783
784
      /* codeword decoding result is written out here: Write out 2 or 4
785
       * quantized spectral values with probably */
786
      /* wrong sign and count number of values which are different from zero for
787
       * sign bit decoding [which happens in next state] */
788
118k
      cntSign = 0;
789
359k
      for (dimCntr = pCbDimension[pCodebook[codewordOffset]]; dimCntr != 0;
790
240k
           dimCntr--) {
791
240k
        pResultBase[iQSC++] =
792
240k
            (FIXP_DBL)*pQuantVal; /* write quant. spec. coef. into spectrum */
793
240k
        if (*pQuantVal++ != 0) {
794
201k
          cntSign += 1;
795
201k
        }
796
240k
      }
797
798
118k
      if (cntSign == 0) {
799
10.1k
        ClearBitFromBitfield(
800
10.1k
            &(pHcr->nonPcwSideinfo.pState), segmentOffset,
801
10.1k
            pCodewordBitfield); /* clear a bit in bitfield and switch off
802
                                   statemachine */
803
108k
      } else {
804
108k
        pCntSign[codewordOffset] = cntSign;     /* write sign count result into
805
                                                   codewordsideinfo of current
806
                                                   codeword */
807
108k
        pSta[codewordOffset] = BODY_SIGN__SIGN; /* change state */
808
108k
        pHcr->nonPcwSideinfo.pState =
809
108k
            aStateConstant2State[pSta[codewordOffset]]; /* get state from
810
                                                           separate array of
811
                                                           cw-sideinfo */
812
108k
      }
813
118k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
814
                                                      for loop counter (see
815
                                                      above) is done here */
816
118k
      break; /* end of branch in tree reached  i.e. a whole nonPCW-Body is
817
                decoded */
818
394k
    } else { /* body is not decoded completely: */
819
394k
      treeNode = *(
820
394k
          pCurrentTree +
821
394k
          branchValue); /* update treeNode for further step in decoding tree */
822
394k
    }
823
513k
  }
824
147k
  iNode[codewordOffset] = treeNode; /* store updated treeNode because maybe
825
                                       decoding of codeword body not finished
826
                                       yet */
827
828
147k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
829
45.6k
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
830
45.6k
                         pSegmentBitfield); /* clear a bit in bitfield and
831
                                               switch off statemachine */
832
833
45.6k
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
834
352
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN__BODY;
835
352
      return BODY_SIGN__BODY;
836
352
    }
837
45.6k
  }
838
839
147k
  return STOP_THIS_STATE;
840
147k
}
841
842
/*---------------------------------------------------------------------------------------------
843
     description: This state decodes the sign bits belonging to a codeword. The
844
state is called as often in different "trials" until pCntSgn[codewordOffset] is
845
zero.
846
-----------------------------------------------------------------------------------------------
847
        output:   The two or four quantizes spectral values (written in previous
848
state) have now the correct sign.
849
-----------------------------------------------------------------------------------------------
850
        return:   0
851
--------------------------------------------------------------------------------------------
852
*/
853
129k
UINT Hcr_State_BODY_SIGN__SIGN(HANDLE_FDK_BITSTREAM bs, void *ptr) {
854
129k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
855
129k
  SCHAR *pRemainingBitsInSegment;
856
129k
  INT *pLeftStartOfSegment;
857
129k
  INT *pRightStartOfSegment;
858
129k
  UCHAR readDirection;
859
129k
  UINT *pSegmentBitfield;
860
129k
  UINT *pCodewordBitfield;
861
129k
  UINT segmentOffset;
862
863
129k
  UCHAR *pCntSign;
864
129k
  FIXP_DBL *pResultBase;
865
129k
  USHORT *iResultPointer;
866
129k
  UINT codewordOffset;
867
868
129k
  UCHAR carryBit;
869
129k
  UINT iQSC;
870
129k
  UCHAR cntSign;
871
872
129k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
873
129k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
874
129k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
875
129k
  readDirection = pHcr->segmentInfo.readDirection;
876
129k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
877
129k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
878
129k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
879
880
  /*pCodebook               = */
881
129k
  pCntSign = pHcr->nonPcwSideinfo.pCntSign;
882
129k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
883
129k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
884
129k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
885
886
129k
  iQSC = iResultPointer[codewordOffset];
887
129k
  cntSign = pCntSign[codewordOffset];
888
889
  /* loop for sign bit decoding */
890
222k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
891
200k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
892
200k
    carryBit = HcrGetABitFromBitstream(
893
200k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
894
200k
        &pRightStartOfSegment[segmentOffset], readDirection);
895
200k
    cntSign -=
896
200k
        1; /* decrement sign counter because one sign bit has been read */
897
898
    /* search for a line (which was decoded in previous state) which is not
899
     * zero. [This value will get a sign] */
900
213k
    while (pResultBase[iQSC] == (FIXP_DBL)0) {
901
12.8k
      if (++iQSC >= 1024) { /* points to current value different from zero */
902
0
        return BODY_SIGN__SIGN;
903
0
      }
904
12.8k
    }
905
906
    /* put sign together with line; if carryBit is zero, the sign is ok already;
907
     * no write operation necessary in this case */
908
200k
    if (carryBit != 0) {
909
44.8k
      pResultBase[iQSC] = -pResultBase[iQSC]; /* carryBit = 1 --> minus */
910
44.8k
    }
911
912
200k
    iQSC++; /* update pointer to next (maybe valid) value */
913
914
200k
    if (cntSign == 0) { /* if (cntSign==0)  ==>  set state CODEWORD_DECODED */
915
107k
      ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
916
107k
                           pCodewordBitfield); /* clear a bit in bitfield and
917
                                                  switch off statemachine */
918
107k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
919
                                                      for loop counter (see
920
                                                      above) is done here */
921
107k
      break; /* whole nonPCW-Body and according sign bits are decoded */
922
107k
    }
923
200k
  }
924
129k
  pCntSign[codewordOffset] = cntSign;
925
129k
  iResultPointer[codewordOffset] = iQSC; /* store updated pResultPointer */
926
927
129k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
928
51.5k
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
929
51.5k
                         pSegmentBitfield); /* clear a bit in bitfield and
930
                                               switch off statemachine */
931
932
51.5k
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
933
4
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN__SIGN;
934
4
      return BODY_SIGN__SIGN;
935
4
    }
936
51.5k
  }
937
938
129k
  return STOP_THIS_STATE;
939
129k
}
940
941
/*---------------------------------------------------------------------------------------------
942
     description: Decodes the codeword body in case of codebook is 11. Writes
943
out resulting two or four lines [with probably wrong sign] and counts the number
944
of lines, which are different form zero. This information is needed in next
945
                  state where sign bits will be decoded, if necessary.
946
                  If sign bit counter cntSign is zero, no sign bits are needed
947
and codeword is decoded completely.
948
-----------------------------------------------------------------------------------------------
949
        output:   Two lines (quantizes spectral coefficients) which are probably
950
wrong. The sign may be wrong and if one or two values is/are 16, the following
951
states will decode the escape sequence to correct the values which are wirtten
952
here.
953
-----------------------------------------------------------------------------------------------
954
        return:   0
955
--------------------------------------------------------------------------------------------
956
*/
957
26.8k
UINT Hcr_State_BODY_SIGN_ESC__BODY(HANDLE_FDK_BITSTREAM bs, void *ptr) {
958
26.8k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
959
26.8k
  SCHAR *pRemainingBitsInSegment;
960
26.8k
  INT *pLeftStartOfSegment;
961
26.8k
  INT *pRightStartOfSegment;
962
26.8k
  UCHAR readDirection;
963
26.8k
  UINT *pSegmentBitfield;
964
26.8k
  UINT *pCodewordBitfield;
965
26.8k
  UINT segmentOffset;
966
967
26.8k
  UINT *iNode;
968
26.8k
  UCHAR *pCntSign;
969
26.8k
  FIXP_DBL *pResultBase;
970
26.8k
  USHORT *iResultPointer;
971
26.8k
  UINT codewordOffset;
972
973
26.8k
  UCHAR carryBit;
974
26.8k
  UINT iQSC;
975
26.8k
  UINT cntSign;
976
26.8k
  UINT dimCntr;
977
26.8k
  UINT treeNode;
978
26.8k
  SCHAR *pSta;
979
26.8k
  UINT branchNode;
980
26.8k
  UINT branchValue;
981
26.8k
  const UINT *pCurrentTree;
982
26.8k
  const SCHAR *pQuantValBase;
983
26.8k
  const SCHAR *pQuantVal;
984
985
26.8k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
986
26.8k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
987
26.8k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
988
26.8k
  readDirection = pHcr->segmentInfo.readDirection;
989
26.8k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
990
26.8k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
991
26.8k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
992
993
26.8k
  iNode = pHcr->nonPcwSideinfo.iNode;
994
26.8k
  pCntSign = pHcr->nonPcwSideinfo.pCntSign;
995
26.8k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
996
26.8k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
997
26.8k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
998
26.8k
  pSta = pHcr->nonPcwSideinfo.pSta;
999
1000
26.8k
  treeNode = iNode[codewordOffset];
1001
26.8k
  pCurrentTree = aHuffTable[ESCAPE_CODEBOOK];
1002
1003
123k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
1004
120k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
1005
120k
    carryBit = HcrGetABitFromBitstream(
1006
120k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
1007
120k
        &pRightStartOfSegment[segmentOffset], readDirection);
1008
1009
    /* make a step in tree */
1010
120k
    CarryBitToBranchValue(carryBit, treeNode, &branchValue, &branchNode);
1011
1012
    /* if end of branch reached write out lines and count bits needed for sign,
1013
     * otherwise store node in codeword sideinfo */
1014
120k
    if ((branchNode & TEST_BIT_10) ==
1015
120k
        TEST_BIT_10) { /* test bit 10 ; if set body complete */
1016
1017
      /* body completely decoded; branchValue is valid */
1018
      /* set pQuantVol to first (of two or four) quantized spectral coefficients
1019
       */
1020
23.6k
      pQuantValBase = aQuantTable[ESCAPE_CODEBOOK]; /* get base address of
1021
                                                       quantized values
1022
                                                       belonging to current
1023
                                                       codebook */
1024
23.6k
      pQuantVal = pQuantValBase + branchValue; /* set pointer to first valid
1025
                                                  line [of 2 or 4 quantized
1026
                                                  values] */
1027
1028
      /* make backup from original resultPointer in node storage for state
1029
       * BODY_SIGN_ESC__SIGN */
1030
23.6k
      iNode[codewordOffset] = iResultPointer[codewordOffset];
1031
1032
      /* get position of first line for writing result */
1033
23.6k
      iQSC = iResultPointer[codewordOffset];
1034
1035
      /* codeword decoding result is written out here: Write out 2 or 4
1036
       * quantized spectral values with probably */
1037
      /* wrong sign and count number of values which are different from zero for
1038
       * sign bit decoding [which happens in next state] */
1039
23.6k
      cntSign = 0;
1040
1041
70.8k
      for (dimCntr = DIMENSION_OF_ESCAPE_CODEBOOK; dimCntr != 0; dimCntr--) {
1042
47.2k
        pResultBase[iQSC++] =
1043
47.2k
            (FIXP_DBL)*pQuantVal; /* write quant. spec. coef. into spectrum */
1044
47.2k
        if (*pQuantVal++ != 0) {
1045
16.1k
          cntSign += 1;
1046
16.1k
        }
1047
47.2k
      }
1048
1049
23.6k
      if (cntSign == 0) {
1050
15.1k
        ClearBitFromBitfield(
1051
15.1k
            &(pHcr->nonPcwSideinfo.pState), segmentOffset,
1052
15.1k
            pCodewordBitfield); /* clear a bit in bitfield and switch off
1053
                                   statemachine */
1054
        /* codeword decoded */
1055
15.1k
      } else {
1056
        /* write sign count result into codewordsideinfo of current codeword */
1057
8.50k
        pCntSign[codewordOffset] = cntSign;
1058
8.50k
        pSta[codewordOffset] = BODY_SIGN_ESC__SIGN; /* change state */
1059
8.50k
        pHcr->nonPcwSideinfo.pState =
1060
8.50k
            aStateConstant2State[pSta[codewordOffset]]; /* get state from
1061
                                                           separate array of
1062
                                                           cw-sideinfo */
1063
8.50k
      }
1064
23.6k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* the last reinitialzation
1065
                                                      of for loop counter (see
1066
                                                      above) is done here */
1067
23.6k
      break; /* end of branch in tree reached  i.e. a whole nonPCW-Body is
1068
                decoded */
1069
96.5k
    } else { /* body is not decoded completely: */
1070
      /* update treeNode for further step in decoding tree and store updated
1071
       * treeNode because maybe no more bits left in segment */
1072
96.5k
      treeNode = *(pCurrentTree + branchValue);
1073
96.5k
      iNode[codewordOffset] = treeNode;
1074
96.5k
    }
1075
120k
  }
1076
1077
26.8k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
1078
4.34k
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
1079
4.34k
                         pSegmentBitfield); /* clear a bit in bitfield and
1080
                                               switch off statemachine */
1081
1082
4.34k
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
1083
779
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN_ESC__BODY;
1084
779
      return BODY_SIGN_ESC__BODY;
1085
779
    }
1086
4.34k
  }
1087
1088
26.0k
  return STOP_THIS_STATE;
1089
26.8k
}
1090
1091
/*---------------------------------------------------------------------------------------------
1092
     description: This state decodes the sign bits, if a codeword of codebook 11
1093
needs some. A flag named 'flagB' in codeword sideinfo is set, if the second line
1094
of quantized spectral values is 16. The 'flagB' is used in case of decoding of a
1095
escape sequence is necessary as far as the second line is concerned.
1096
1097
                  If only the first line needs an escape sequence, the flagB is
1098
cleared. If only the second line needs an escape sequence, the flagB is not
1099
used.
1100
1101
                  For storing sideinfo in case of escape sequence decoding one
1102
single word can be used for both escape sequences because they are decoded not
1103
at the same time:
1104
1105
1106
                  bit 23 22 21 20 19 18 17 16 15 14 13 12 11 10  9  8  7  6  5
1107
4  3  2  1  0
1108
                      ===== == == =========== ===========
1109
=================================== ^      ^  ^         ^            ^
1110
^ |      |  |         |            |                    | res. flagA  flagB
1111
escapePrefixUp  escapePrefixDown  escapeWord
1112
1113
-----------------------------------------------------------------------------------------------
1114
        output:   Two lines with correct sign. If one or two values is/are 16,
1115
the lines are not valid, otherwise they are.
1116
-----------------------------------------------------------------------------------------------
1117
        return:   0
1118
--------------------------------------------------------------------------------------------
1119
*/
1120
9.02k
UINT Hcr_State_BODY_SIGN_ESC__SIGN(HANDLE_FDK_BITSTREAM bs, void *ptr) {
1121
9.02k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
1122
9.02k
  SCHAR *pRemainingBitsInSegment;
1123
9.02k
  INT *pLeftStartOfSegment;
1124
9.02k
  INT *pRightStartOfSegment;
1125
9.02k
  UCHAR readDirection;
1126
9.02k
  UINT *pSegmentBitfield;
1127
9.02k
  UINT *pCodewordBitfield;
1128
9.02k
  UINT segmentOffset;
1129
1130
9.02k
  UINT *iNode;
1131
9.02k
  UCHAR *pCntSign;
1132
9.02k
  FIXP_DBL *pResultBase;
1133
9.02k
  USHORT *iResultPointer;
1134
9.02k
  UINT *pEscapeSequenceInfo;
1135
9.02k
  UINT codewordOffset;
1136
1137
9.02k
  UINT iQSC;
1138
9.02k
  UCHAR cntSign;
1139
9.02k
  UINT flagA;
1140
9.02k
  UINT flagB;
1141
9.02k
  UINT flags;
1142
9.02k
  UCHAR carryBit;
1143
9.02k
  SCHAR *pSta;
1144
1145
9.02k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
1146
9.02k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
1147
9.02k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
1148
9.02k
  readDirection = pHcr->segmentInfo.readDirection;
1149
9.02k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
1150
9.02k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
1151
9.02k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
1152
1153
9.02k
  iNode = pHcr->nonPcwSideinfo.iNode;
1154
9.02k
  pCntSign = pHcr->nonPcwSideinfo.pCntSign;
1155
9.02k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
1156
9.02k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
1157
9.02k
  pEscapeSequenceInfo = pHcr->nonPcwSideinfo.pEscapeSequenceInfo;
1158
9.02k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
1159
9.02k
  pSta = pHcr->nonPcwSideinfo.pSta;
1160
1161
9.02k
  iQSC = iResultPointer[codewordOffset];
1162
9.02k
  cntSign = pCntSign[codewordOffset];
1163
1164
  /* loop for sign bit decoding */
1165
16.6k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
1166
16.0k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
1167
16.0k
    carryBit = HcrGetABitFromBitstream(
1168
16.0k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
1169
16.0k
        &pRightStartOfSegment[segmentOffset], readDirection);
1170
1171
    /* decrement sign counter because one sign bit has been read */
1172
16.0k
    cntSign -= 1;
1173
16.0k
    pCntSign[codewordOffset] = cntSign;
1174
1175
    /* get a quantized spectral value (which was decoded in previous state)
1176
     * which is not zero. [This value will get a sign] */
1177
16.5k
    while (pResultBase[iQSC] == (FIXP_DBL)0) {
1178
466
      if (++iQSC >= 1024) {
1179
0
        return BODY_SIGN_ESC__SIGN;
1180
0
      }
1181
466
    }
1182
16.0k
    iResultPointer[codewordOffset] = iQSC;
1183
1184
    /* put negative sign together with quantized spectral value; if carryBit is
1185
     * zero, the sign is ok already; no write operation necessary in this case
1186
     */
1187
16.0k
    if (carryBit != 0) {
1188
5.90k
      pResultBase[iQSC] = -pResultBase[iQSC]; /* carryBit = 1 --> minus */
1189
5.90k
    }
1190
16.0k
    iQSC++; /* update index to next (maybe valid) value */
1191
16.0k
    iResultPointer[codewordOffset] = iQSC;
1192
1193
16.0k
    if (cntSign == 0) {
1194
      /* all sign bits are decoded now */
1195
8.45k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
1196
                                                      for loop counter (see
1197
                                                      above) is done here */
1198
1199
      /* check decoded values if codeword is decoded: Check if one or two escape
1200
       * sequences 16 follow */
1201
1202
      /* step 0 */
1203
      /* restore pointer to first decoded quantized value [ = original
1204
       * pResultPointr] from index iNode prepared in State_BODY_SIGN_ESC__BODY
1205
       */
1206
8.45k
      iQSC = iNode[codewordOffset];
1207
1208
      /* step 1 */
1209
      /* test first value if escape sequence follows */
1210
8.45k
      flagA = 0; /* for first possible escape sequence */
1211
8.45k
      if (fixp_abs(pResultBase[iQSC++]) == (FIXP_DBL)ESCAPE_VALUE) {
1212
1.82k
        flagA = 1;
1213
1.82k
      }
1214
1215
      /* step 2 */
1216
      /* test second value if escape sequence follows */
1217
8.45k
      flagB = 0; /* for second possible escape sequence */
1218
8.45k
      if (fixp_abs(pResultBase[iQSC]) == (FIXP_DBL)ESCAPE_VALUE) {
1219
2.03k
        flagB = 1;
1220
2.03k
      }
1221
1222
      /* step 3 */
1223
      /* evaluate flag result and go on if necessary */
1224
8.45k
      if (!flagA && !flagB) {
1225
5.76k
        ClearBitFromBitfield(
1226
5.76k
            &(pHcr->nonPcwSideinfo.pState), segmentOffset,
1227
5.76k
            pCodewordBitfield); /* clear a bit in bitfield and switch off
1228
                                   statemachine */
1229
5.76k
      } else {
1230
        /* at least one of two lines is 16 */
1231
        /* store both flags at correct positions in non PCW codeword sideinfo
1232
         * pEscapeSequenceInfo[codewordOffset] */
1233
2.68k
        flags = flagA << POSITION_OF_FLAG_A;
1234
2.68k
        flags |= (flagB << POSITION_OF_FLAG_B);
1235
2.68k
        pEscapeSequenceInfo[codewordOffset] = flags;
1236
1237
        /* set next state */
1238
2.68k
        pSta[codewordOffset] = BODY_SIGN_ESC__ESC_PREFIX;
1239
2.68k
        pHcr->nonPcwSideinfo.pState =
1240
2.68k
            aStateConstant2State[pSta[codewordOffset]]; /* get state from
1241
                                                           separate array of
1242
                                                           cw-sideinfo */
1243
1244
        /* set result pointer to the first line of the two decoded lines */
1245
2.68k
        iResultPointer[codewordOffset] = iNode[codewordOffset];
1246
1247
2.68k
        if (!flagA && flagB) {
1248
          /* update pResultPointr ==> state Stat_BODY_SIGN_ESC__ESC_WORD writes
1249
           * to correct position. Second value is the one and only escape value
1250
           */
1251
857
          iQSC = iResultPointer[codewordOffset];
1252
857
          iQSC++;
1253
857
          iResultPointer[codewordOffset] = iQSC;
1254
857
        }
1255
1256
2.68k
      }      /* at least one of two lines is 16 */
1257
8.45k
      break; /* nonPCW-Body at cb 11 and according sign bits are decoded */
1258
1259
8.45k
    } /* if ( cntSign == 0 ) */
1260
16.0k
  }   /* loop over remaining Bits in segment */
1261
1262
9.02k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
1263
988
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
1264
988
                         pSegmentBitfield); /* clear a bit in bitfield and
1265
                                               switch off statemachine */
1266
1267
988
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
1268
6
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN_ESC__SIGN;
1269
6
      return BODY_SIGN_ESC__SIGN;
1270
6
    }
1271
988
  }
1272
9.01k
  return STOP_THIS_STATE;
1273
9.02k
}
1274
1275
/*---------------------------------------------------------------------------------------------
1276
     description: Decode escape prefix of first or second escape sequence. The
1277
escape prefix consists of ones. The following zero is also decoded here.
1278
-----------------------------------------------------------------------------------------------
1279
        output:   If the single separator-zero which follows the
1280
escape-prefix-ones is not yet decoded: The value 'escapePrefixUp' in word
1281
pEscapeSequenceInfo[codewordOffset] is updated.
1282
1283
                  If the single separator-zero which follows the
1284
escape-prefix-ones is decoded: Two updated values 'escapePrefixUp' and
1285
'escapePrefixDown' in word pEscapeSequenceInfo[codewordOffset]. This State is
1286
finished. Switch to next state.
1287
-----------------------------------------------------------------------------------------------
1288
        return:   0
1289
--------------------------------------------------------------------------------------------
1290
*/
1291
4.11k
UINT Hcr_State_BODY_SIGN_ESC__ESC_PREFIX(HANDLE_FDK_BITSTREAM bs, void *ptr) {
1292
4.11k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
1293
4.11k
  SCHAR *pRemainingBitsInSegment;
1294
4.11k
  INT *pLeftStartOfSegment;
1295
4.11k
  INT *pRightStartOfSegment;
1296
4.11k
  UCHAR readDirection;
1297
4.11k
  UINT *pSegmentBitfield;
1298
4.11k
  UINT segmentOffset;
1299
4.11k
  UINT *pEscapeSequenceInfo;
1300
4.11k
  UINT codewordOffset;
1301
4.11k
  UCHAR carryBit;
1302
4.11k
  UINT escapePrefixUp;
1303
4.11k
  SCHAR *pSta;
1304
1305
4.11k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
1306
4.11k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
1307
4.11k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
1308
4.11k
  readDirection = pHcr->segmentInfo.readDirection;
1309
4.11k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
1310
4.11k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
1311
4.11k
  pEscapeSequenceInfo = pHcr->nonPcwSideinfo.pEscapeSequenceInfo;
1312
4.11k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
1313
4.11k
  pSta = pHcr->nonPcwSideinfo.pSta;
1314
1315
4.11k
  escapePrefixUp =
1316
4.11k
      (pEscapeSequenceInfo[codewordOffset] & MASK_ESCAPE_PREFIX_UP) >>
1317
4.11k
      LSB_ESCAPE_PREFIX_UP;
1318
1319
  /* decode escape prefix */
1320
6.59k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
1321
6.31k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
1322
6.31k
    carryBit = HcrGetABitFromBitstream(
1323
6.31k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
1324
6.31k
        &pRightStartOfSegment[segmentOffset], readDirection);
1325
1326
    /* count ones and store sum in escapePrefixUp */
1327
6.31k
    if (carryBit == 1) {
1328
2.49k
      escapePrefixUp += 1; /* update conter for ones */
1329
2.49k
      if (escapePrefixUp > 8) {
1330
15
        pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN_ESC__ESC_PREFIX;
1331
15
        return BODY_SIGN_ESC__ESC_PREFIX;
1332
15
      }
1333
1334
      /* store updated counter in sideinfo of current codeword */
1335
2.48k
      pEscapeSequenceInfo[codewordOffset] &=
1336
2.48k
          ~MASK_ESCAPE_PREFIX_UP;              /* delete old escapePrefixUp */
1337
2.48k
      escapePrefixUp <<= LSB_ESCAPE_PREFIX_UP; /* shift to correct position */
1338
2.48k
      pEscapeSequenceInfo[codewordOffset] |=
1339
2.48k
          escapePrefixUp;                      /* insert new escapePrefixUp */
1340
2.48k
      escapePrefixUp >>= LSB_ESCAPE_PREFIX_UP; /* shift back down */
1341
3.81k
    } else {                                   /* separator [zero] reached */
1342
3.81k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
1343
                                                      for loop counter (see
1344
                                                      above) is done here */
1345
3.81k
      escapePrefixUp +=
1346
3.81k
          4; /* if escape_separator '0' appears, add 4 and ==> break */
1347
1348
      /* store escapePrefixUp in pEscapeSequenceInfo[codewordOffset] at bit
1349
       * position escapePrefixUp */
1350
3.81k
      pEscapeSequenceInfo[codewordOffset] &=
1351
3.81k
          ~MASK_ESCAPE_PREFIX_UP;              /* delete old escapePrefixUp */
1352
3.81k
      escapePrefixUp <<= LSB_ESCAPE_PREFIX_UP; /* shift to correct position */
1353
3.81k
      pEscapeSequenceInfo[codewordOffset] |=
1354
3.81k
          escapePrefixUp;                      /* insert new escapePrefixUp */
1355
3.81k
      escapePrefixUp >>= LSB_ESCAPE_PREFIX_UP; /* shift back down */
1356
1357
      /* store escapePrefixUp in pEscapeSequenceInfo[codewordOffset] at bit
1358
       * position escapePrefixDown */
1359
3.81k
      pEscapeSequenceInfo[codewordOffset] &=
1360
3.81k
          ~MASK_ESCAPE_PREFIX_DOWN; /* delete old escapePrefixDown */
1361
3.81k
      escapePrefixUp <<= LSB_ESCAPE_PREFIX_DOWN; /* shift to correct position */
1362
3.81k
      pEscapeSequenceInfo[codewordOffset] |=
1363
3.81k
          escapePrefixUp; /* insert new escapePrefixDown */
1364
1365
3.81k
      pSta[codewordOffset] = BODY_SIGN_ESC__ESC_WORD; /* set next state */
1366
3.81k
      pHcr->nonPcwSideinfo.pState =
1367
3.81k
          aStateConstant2State[pSta[codewordOffset]]; /* get state from separate
1368
                                                         array of cw-sideinfo */
1369
3.81k
      break;
1370
3.81k
    }
1371
6.31k
  }
1372
1373
4.10k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
1374
654
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
1375
654
                         pSegmentBitfield); /* clear a bit in bitfield and
1376
                                               switch off statemachine */
1377
1378
654
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
1379
2
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN_ESC__ESC_PREFIX;
1380
2
      return BODY_SIGN_ESC__ESC_PREFIX;
1381
2
    }
1382
654
  }
1383
1384
4.09k
  return STOP_THIS_STATE;
1385
4.10k
}
1386
1387
/*---------------------------------------------------------------------------------------------
1388
     description: Decode escapeWord of escape sequence. If the escape sequence
1389
is decoded completely, assemble quantized-spectral-escape-coefficient and
1390
replace the previous decoded 16 by the new value. Test flagB. If flagB is set,
1391
the second escape sequence must be decoded. If flagB is not set, the codeword is
1392
decoded and the state machine is switched off.
1393
-----------------------------------------------------------------------------------------------
1394
        output:   Two lines with valid sign. At least one of both lines has got
1395
the correct value.
1396
-----------------------------------------------------------------------------------------------
1397
        return:   0
1398
--------------------------------------------------------------------------------------------
1399
*/
1400
5.06k
UINT Hcr_State_BODY_SIGN_ESC__ESC_WORD(HANDLE_FDK_BITSTREAM bs, void *ptr) {
1401
5.06k
  H_HCR_INFO pHcr = (H_HCR_INFO)ptr;
1402
5.06k
  SCHAR *pRemainingBitsInSegment;
1403
5.06k
  INT *pLeftStartOfSegment;
1404
5.06k
  INT *pRightStartOfSegment;
1405
5.06k
  UCHAR readDirection;
1406
5.06k
  UINT *pSegmentBitfield;
1407
5.06k
  UINT *pCodewordBitfield;
1408
5.06k
  UINT segmentOffset;
1409
1410
5.06k
  FIXP_DBL *pResultBase;
1411
5.06k
  USHORT *iResultPointer;
1412
5.06k
  UINT *pEscapeSequenceInfo;
1413
5.06k
  UINT codewordOffset;
1414
1415
5.06k
  UINT escapeWord;
1416
5.06k
  UINT escapePrefixDown;
1417
5.06k
  UINT escapePrefixUp;
1418
5.06k
  UCHAR carryBit;
1419
5.06k
  UINT iQSC;
1420
5.06k
  INT sign;
1421
5.06k
  UINT flagA;
1422
5.06k
  UINT flagB;
1423
5.06k
  SCHAR *pSta;
1424
1425
5.06k
  pRemainingBitsInSegment = pHcr->segmentInfo.pRemainingBitsInSegment;
1426
5.06k
  pLeftStartOfSegment = pHcr->segmentInfo.pLeftStartOfSegment;
1427
5.06k
  pRightStartOfSegment = pHcr->segmentInfo.pRightStartOfSegment;
1428
5.06k
  readDirection = pHcr->segmentInfo.readDirection;
1429
5.06k
  pSegmentBitfield = pHcr->segmentInfo.pSegmentBitfield;
1430
5.06k
  pCodewordBitfield = pHcr->segmentInfo.pCodewordBitfield;
1431
5.06k
  segmentOffset = pHcr->segmentInfo.segmentOffset;
1432
1433
5.06k
  pResultBase = pHcr->nonPcwSideinfo.pResultBase;
1434
5.06k
  iResultPointer = pHcr->nonPcwSideinfo.iResultPointer;
1435
5.06k
  pEscapeSequenceInfo = pHcr->nonPcwSideinfo.pEscapeSequenceInfo;
1436
5.06k
  codewordOffset = pHcr->nonPcwSideinfo.codewordOffset;
1437
5.06k
  pSta = pHcr->nonPcwSideinfo.pSta;
1438
1439
5.06k
  escapeWord = pEscapeSequenceInfo[codewordOffset] & MASK_ESCAPE_WORD;
1440
5.06k
  escapePrefixDown =
1441
5.06k
      (pEscapeSequenceInfo[codewordOffset] & MASK_ESCAPE_PREFIX_DOWN) >>
1442
5.06k
      LSB_ESCAPE_PREFIX_DOWN;
1443
1444
  /* decode escape word */
1445
18.5k
  for (; pRemainingBitsInSegment[segmentOffset] > 0;
1446
17.2k
       pRemainingBitsInSegment[segmentOffset] -= 1) {
1447
17.2k
    carryBit = HcrGetABitFromBitstream(
1448
17.2k
        bs, pHcr->decInOut.bitstreamAnchor, &pLeftStartOfSegment[segmentOffset],
1449
17.2k
        &pRightStartOfSegment[segmentOffset], readDirection);
1450
1451
    /* build escape word */
1452
17.2k
    escapeWord <<=
1453
17.2k
        1; /* left shift previous decoded part of escapeWord by on bit */
1454
17.2k
    escapeWord = escapeWord | carryBit; /* assemble escape word by bitwise or */
1455
1456
    /* decrement counter for length of escape word because one more bit was
1457
     * decoded */
1458
17.2k
    escapePrefixDown -= 1;
1459
1460
    /* store updated escapePrefixDown */
1461
17.2k
    pEscapeSequenceInfo[codewordOffset] &=
1462
17.2k
        ~MASK_ESCAPE_PREFIX_DOWN; /* delete old escapePrefixDown */
1463
17.2k
    escapePrefixDown <<= LSB_ESCAPE_PREFIX_DOWN; /* shift to correct position */
1464
17.2k
    pEscapeSequenceInfo[codewordOffset] |=
1465
17.2k
        escapePrefixDown; /* insert new escapePrefixDown */
1466
17.2k
    escapePrefixDown >>= LSB_ESCAPE_PREFIX_DOWN; /* shift back */
1467
1468
    /* store updated escapeWord */
1469
17.2k
    pEscapeSequenceInfo[codewordOffset] &=
1470
17.2k
        ~MASK_ESCAPE_WORD; /* delete old escapeWord */
1471
17.2k
    pEscapeSequenceInfo[codewordOffset] |=
1472
17.2k
        escapeWord; /* insert new escapeWord */
1473
1474
17.2k
    if (escapePrefixDown == 0) {
1475
3.73k
      pRemainingBitsInSegment[segmentOffset] -= 1; /* last reinitialzation of
1476
                                                      for loop counter (see
1477
                                                      above) is done here */
1478
1479
      /* escape sequence decoded. Assemble escape-line and replace original line
1480
       */
1481
1482
      /* step 0 */
1483
      /* derive sign */
1484
3.73k
      iQSC = iResultPointer[codewordOffset];
1485
3.73k
      sign = (pResultBase[iQSC] >= (FIXP_DBL)0)
1486
3.73k
                 ? 1
1487
3.73k
                 : -1; /* get sign of escape value 16 */
1488
1489
      /* step 1 */
1490
      /* get escapePrefixUp */
1491
3.73k
      escapePrefixUp =
1492
3.73k
          (pEscapeSequenceInfo[codewordOffset] & MASK_ESCAPE_PREFIX_UP) >>
1493
3.73k
          LSB_ESCAPE_PREFIX_UP;
1494
1495
      /* step 2 */
1496
      /* calculate escape value */
1497
3.73k
      pResultBase[iQSC] =
1498
3.73k
          (FIXP_DBL)(sign * (((INT)1 << escapePrefixUp) + (INT)escapeWord));
1499
1500
      /* get both flags from sideinfo (flags are not shifted to the
1501
       * lsb-position) */
1502
3.73k
      flagA = pEscapeSequenceInfo[codewordOffset] & MASK_FLAG_A;
1503
3.73k
      flagB = pEscapeSequenceInfo[codewordOffset] & MASK_FLAG_B;
1504
1505
      /* step 3 */
1506
      /* clear the whole escape sideinfo word */
1507
3.73k
      pEscapeSequenceInfo[codewordOffset] = 0;
1508
1509
      /* change state in dependence of flag flagB */
1510
3.73k
      if (flagA != 0) {
1511
        /* first escape sequence decoded; previous decoded 16 has been replaced
1512
         * by valid line */
1513
1514
        /* clear flagA in sideinfo word because this escape sequence has already
1515
         * beed decoded */
1516
1.76k
        pEscapeSequenceInfo[codewordOffset] &= ~MASK_FLAG_A;
1517
1518
1.76k
        if (flagB == 0) {
1519
615
          ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
1520
615
                               pCodewordBitfield); /* clear a bit in bitfield
1521
                                                      and switch off
1522
                                                      statemachine */
1523
1.15k
        } else {
1524
          /* updated pointer to next and last 16 */
1525
1.15k
          iQSC++;
1526
1.15k
          iResultPointer[codewordOffset] = iQSC;
1527
1528
          /* change state */
1529
1.15k
          pSta[codewordOffset] = BODY_SIGN_ESC__ESC_PREFIX;
1530
1.15k
          pHcr->nonPcwSideinfo.pState =
1531
1.15k
              aStateConstant2State[pSta[codewordOffset]]; /* get state from
1532
                                                             separate array of
1533
                                                             cw-sideinfo */
1534
1.15k
        }
1535
1.96k
      } else {
1536
1.96k
        ClearBitFromBitfield(
1537
1.96k
            &(pHcr->nonPcwSideinfo.pState), segmentOffset,
1538
1.96k
            pCodewordBitfield); /* clear a bit in bitfield and switch off
1539
                                   statemachine */
1540
1.96k
      }
1541
3.73k
      break;
1542
3.73k
    }
1543
17.2k
  }
1544
1545
5.06k
  if (pRemainingBitsInSegment[segmentOffset] <= 0) {
1546
1.50k
    ClearBitFromBitfield(&(pHcr->nonPcwSideinfo.pState), segmentOffset,
1547
1.50k
                         pSegmentBitfield); /* clear a bit in bitfield and
1548
                                               switch off statemachine */
1549
1550
1.50k
    if (pRemainingBitsInSegment[segmentOffset] < 0) {
1551
10
      pHcr->decInOut.errorLog |= STATE_ERROR_BODY_SIGN_ESC__ESC_WORD;
1552
10
      return BODY_SIGN_ESC__ESC_WORD;
1553
10
    }
1554
1.50k
  }
1555
1556
5.05k
  return STOP_THIS_STATE;
1557
5.06k
}