/src/libvncserver/src/common/zywrletemplate.c
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1 | | |
2 | | /******************************************************************** |
3 | | * * |
4 | | * THIS FILE IS PART OF THE 'ZYWRLE' VNC CODEC SOURCE CODE. * |
5 | | * * |
6 | | * USE, DISTRIBUTION AND REPRODUCTION OF THIS LIBRARY SOURCE IS * |
7 | | * GOVERNED BY A FOLLOWING BSD-STYLE SOURCE LICENSE. * |
8 | | * PLEASE READ THESE TERMS BEFORE DISTRIBUTING. * |
9 | | * * |
10 | | * THE 'ZYWRLE' VNC CODEC SOURCE CODE IS (C) COPYRIGHT 2006 * |
11 | | * BY Hitachi Systems & Services, Ltd. * |
12 | | * (Noriaki Yamazaki, Research & Development Center) * * |
13 | | * * |
14 | | ******************************************************************** |
15 | | Redistribution and use in source and binary forms, with or without |
16 | | modification, are permitted provided that the following conditions |
17 | | are met: |
18 | | |
19 | | - Redistributions of source code must retain the above copyright |
20 | | notice, this list of conditions and the following disclaimer. |
21 | | |
22 | | - Redistributions in binary form must reproduce the above copyright |
23 | | notice, this list of conditions and the following disclaimer in the |
24 | | documentation and/or other materials provided with the distribution. |
25 | | |
26 | | - Neither the name of the Hitachi Systems & Services, Ltd. nor |
27 | | the names of its contributors may be used to endorse or promote |
28 | | products derived from this software without specific prior written |
29 | | permission. |
30 | | |
31 | | THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS |
32 | | ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT |
33 | | LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR |
34 | | A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION |
35 | | OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, |
36 | | SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT |
37 | | LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, |
38 | | DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY |
39 | | THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT |
40 | | (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE |
41 | | OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
42 | | ********************************************************************/ |
43 | | |
44 | | /* Change Log: |
45 | | V0.02 : 2008/02/04 : Fix mis encode/decode when width != scanline |
46 | | (Thanks Johannes Schindelin, author of LibVNC |
47 | | Server/Client) |
48 | | V0.01 : 2007/02/06 : Initial release |
49 | | */ |
50 | | |
51 | | /* #define ZYWRLE_ENCODE */ |
52 | | /* #define ZYWRLE_DECODE */ |
53 | | #define ZYWRLE_QUANTIZE |
54 | | |
55 | | /* |
56 | | [References] |
57 | | PLHarr: |
58 | | Senecal, J. G., P. Lindstrom, M. A. Duchaineau, and K. I. Joy, "An Improved N-Bit to N-Bit Reversible Haar-Like Transform," Pacific Graphics 2004, October 2004, pp. 371-380. |
59 | | EZW: |
60 | | Shapiro, JM: Embedded Image Coding Using Zerotrees of Wavelet Coefficients, IEEE Trans. Signal. Process., Vol.41, pp.3445-3462 (1993). |
61 | | */ |
62 | | |
63 | | |
64 | | /* Template Macro stuffs. */ |
65 | | #undef ZYWRLE_ANALYZE |
66 | | #undef ZYWRLE_SYNTHESIZE |
67 | 0 | #define ZYWRLE_ANALYZE __RFB_CONCAT3E(zywrleAnalyze,BPP,END_FIX) |
68 | | #define ZYWRLE_SYNTHESIZE __RFB_CONCAT3E(zywrleSynthesize,BPP,END_FIX) |
69 | | |
70 | 0 | #define ZYWRLE_RGBYUV __RFB_CONCAT3E(zywrleRGBYUV,BPP,END_FIX) |
71 | | #define ZYWRLE_YUVRGB __RFB_CONCAT3E(zywrleYUVRGB,BPP,END_FIX) |
72 | | #define ZYWRLE_YMASK __RFB_CONCAT2E(ZYWRLE_YMASK,BPP) |
73 | | #define ZYWRLE_UVMASK __RFB_CONCAT2E(ZYWRLE_UVMASK,BPP) |
74 | 0 | #define ZYWRLE_LOAD_PIXEL __RFB_CONCAT2E(ZYWRLE_LOAD_PIXEL,BPP) |
75 | | #define ZYWRLE_SAVE_PIXEL __RFB_CONCAT2E(ZYWRLE_SAVE_PIXEL,BPP) |
76 | | |
77 | | /* Packing/Unpacking pixel stuffs. |
78 | | Endian conversion stuffs. */ |
79 | | #undef S_0 |
80 | | #undef S_1 |
81 | | #undef L_0 |
82 | | #undef L_1 |
83 | | #undef L_2 |
84 | | #if ZYWRLE_ENDIAN == ENDIAN_BIG |
85 | 0 | # define S_0 1 |
86 | 0 | # define S_1 0 |
87 | 0 | # define L_0 3 |
88 | 0 | # define L_1 2 |
89 | 0 | # define L_2 1 |
90 | | #else |
91 | 0 | # define S_0 0 |
92 | 0 | # define S_1 1 |
93 | 0 | # define L_0 0 |
94 | 0 | # define L_1 1 |
95 | 0 | # define L_2 2 |
96 | | #endif |
97 | | |
98 | | /* Load/Save pixel stuffs. */ |
99 | | #define ZYWRLE_YMASK15 0xFFFFFFF8 |
100 | | #define ZYWRLE_UVMASK15 0xFFFFFFF8 |
101 | 0 | #define ZYWRLE_LOAD_PIXEL15(pSrc,R,G,B) { \ |
102 | 0 | R = (((unsigned char*)pSrc)[S_1]<< 1)& 0xF8; \ |
103 | 0 | G = ((((unsigned char*)pSrc)[S_1]<< 6)|(((unsigned char*)pSrc)[S_0]>> 2))& 0xF8; \ |
104 | 0 | B = (((unsigned char*)pSrc)[S_0]<< 3)& 0xF8; \ |
105 | 0 | } |
106 | | #define ZYWRLE_SAVE_PIXEL15(pDst,R,G,B) { \ |
107 | | R &= 0xF8; \ |
108 | | G &= 0xF8; \ |
109 | | B &= 0xF8; \ |
110 | | ((unsigned char*)pDst)[S_1] = (unsigned char)( (R>>1)|(G>>6) ); \ |
111 | | ((unsigned char*)pDst)[S_0] = (unsigned char)(((B>>3)|(G<<2))& 0xFF); \ |
112 | | } |
113 | | #define ZYWRLE_YMASK16 0xFFFFFFFC |
114 | | #define ZYWRLE_UVMASK16 0xFFFFFFF8 |
115 | 0 | #define ZYWRLE_LOAD_PIXEL16(pSrc,R,G,B) { \ |
116 | 0 | R = ((unsigned char*)pSrc)[S_1] & 0xF8; \ |
117 | 0 | G = ((((unsigned char*)pSrc)[S_1]<< 5)|(((unsigned char*)pSrc)[S_0]>> 3))& 0xFC; \ |
118 | 0 | B = (((unsigned char*)pSrc)[S_0]<< 3)& 0xF8; \ |
119 | 0 | } |
120 | | #define ZYWRLE_SAVE_PIXEL16(pDst,R,G,B) { \ |
121 | | R &= 0xF8; \ |
122 | | G &= 0xFC; \ |
123 | | B &= 0xF8; \ |
124 | | ((unsigned char*)pDst)[S_1] = (unsigned char)( R |(G>>5) ); \ |
125 | | ((unsigned char*)pDst)[S_0] = (unsigned char)(((B>>3)|(G<<3))& 0xFF); \ |
126 | | } |
127 | | #define ZYWRLE_YMASK32 0xFFFFFFFF |
128 | | #define ZYWRLE_UVMASK32 0xFFFFFFFF |
129 | 0 | #define ZYWRLE_LOAD_PIXEL32(pSrc,R,G,B) { \ |
130 | 0 | R = ((unsigned char*)pSrc)[L_2]; \ |
131 | 0 | G = ((unsigned char*)pSrc)[L_1]; \ |
132 | 0 | B = ((unsigned char*)pSrc)[L_0]; \ |
133 | 0 | } |
134 | | #define ZYWRLE_SAVE_PIXEL32(pDst,R,G,B) { \ |
135 | | ((unsigned char*)pDst)[L_2] = (unsigned char)R; \ |
136 | | ((unsigned char*)pDst)[L_1] = (unsigned char)G; \ |
137 | | ((unsigned char*)pDst)[L_0] = (unsigned char)B; \ |
138 | | } |
139 | | |
140 | | #ifndef ZYWRLE_ONCE |
141 | | #define ZYWRLE_ONCE |
142 | | |
143 | | #ifdef WIN32 |
144 | | #define InlineX __inline |
145 | | #else |
146 | | # ifndef __STRICT_ANSI__ |
147 | | # define InlineX inline |
148 | | # else |
149 | | # define InlineX |
150 | | # endif |
151 | | #endif |
152 | | |
153 | | #ifdef ZYWRLE_ENCODE |
154 | | /* Tables for Coefficients filtering. */ |
155 | | # ifndef ZYWRLE_QUANTIZE |
156 | | /* Type A:lower bit omitting of EZW style. */ |
157 | | const static unsigned int zywrleParam[3][3]={ |
158 | | {0x0000F000,0x00000000,0x00000000}, |
159 | | {0x0000C000,0x00F0F0F0,0x00000000}, |
160 | | {0x0000C000,0x00C0C0C0,0x00F0F0F0}, |
161 | | /* {0x0000FF00,0x00000000,0x00000000}, |
162 | | {0x0000FF00,0x00FFFFFF,0x00000000}, |
163 | | {0x0000FF00,0x00FFFFFF,0x00FFFFFF}, */ |
164 | | }; |
165 | | # else |
166 | | /* Type B:Non liner quantization filter. */ |
167 | | static const signed char zywrleConv[4][256]={ |
168 | | { /* bi=5, bo=5 r=0.0:PSNR=24.849 */ |
169 | | 0, 0, 0, 0, 0, 0, 0, 0, |
170 | | 0, 0, 0, 0, 0, 0, 0, 0, |
171 | | 0, 0, 0, 0, 0, 0, 0, 0, |
172 | | 0, 0, 0, 0, 0, 0, 0, 0, |
173 | | 0, 0, 0, 0, 0, 0, 0, 0, |
174 | | 0, 0, 0, 0, 0, 0, 0, 0, |
175 | | 0, 0, 0, 0, 0, 0, 0, 0, |
176 | | 0, 0, 0, 0, 0, 0, 0, 0, |
177 | | 0, 0, 0, 0, 0, 0, 0, 0, |
178 | | 0, 0, 0, 0, 0, 0, 0, 0, |
179 | | 0, 0, 0, 0, 0, 0, 0, 0, |
180 | | 0, 0, 0, 0, 0, 0, 0, 0, |
181 | | 0, 0, 0, 0, 0, 0, 0, 0, |
182 | | 0, 0, 0, 0, 0, 0, 0, 0, |
183 | | 0, 0, 0, 0, 0, 0, 0, 0, |
184 | | 0, 0, 0, 0, 0, 0, 0, 0, |
185 | | 0, 0, 0, 0, 0, 0, 0, 0, |
186 | | 0, 0, 0, 0, 0, 0, 0, 0, |
187 | | 0, 0, 0, 0, 0, 0, 0, 0, |
188 | | 0, 0, 0, 0, 0, 0, 0, 0, |
189 | | 0, 0, 0, 0, 0, 0, 0, 0, |
190 | | 0, 0, 0, 0, 0, 0, 0, 0, |
191 | | 0, 0, 0, 0, 0, 0, 0, 0, |
192 | | 0, 0, 0, 0, 0, 0, 0, 0, |
193 | | 0, 0, 0, 0, 0, 0, 0, 0, |
194 | | 0, 0, 0, 0, 0, 0, 0, 0, |
195 | | 0, 0, 0, 0, 0, 0, 0, 0, |
196 | | 0, 0, 0, 0, 0, 0, 0, 0, |
197 | | 0, 0, 0, 0, 0, 0, 0, 0, |
198 | | 0, 0, 0, 0, 0, 0, 0, 0, |
199 | | 0, 0, 0, 0, 0, 0, 0, 0, |
200 | | 0, 0, 0, 0, 0, 0, 0, 0, |
201 | | }, |
202 | | { /* bi=5, bo=5 r=2.0:PSNR=74.031 */ |
203 | | 0, 0, 0, 0, 0, 0, 0, 0, |
204 | | 0, 0, 0, 0, 0, 0, 0, 0, |
205 | | 0, 0, 0, 0, 0, 0, 0, 32, |
206 | | 32, 32, 32, 32, 32, 32, 32, 32, |
207 | | 32, 32, 32, 32, 32, 32, 32, 32, |
208 | | 48, 48, 48, 48, 48, 48, 48, 48, |
209 | | 48, 48, 48, 56, 56, 56, 56, 56, |
210 | | 56, 56, 56, 56, 64, 64, 64, 64, |
211 | | 64, 64, 64, 64, 72, 72, 72, 72, |
212 | | 72, 72, 72, 72, 80, 80, 80, 80, |
213 | | 80, 80, 88, 88, 88, 88, 88, 88, |
214 | | 88, 88, 88, 88, 88, 88, 96, 96, |
215 | | 96, 96, 96, 104, 104, 104, 104, 104, |
216 | | 104, 104, 104, 104, 104, 112, 112, 112, |
217 | | 112, 112, 112, 112, 112, 112, 120, 120, |
218 | | 120, 120, 120, 120, 120, 120, 120, 120, |
219 | | 0, -120, -120, -120, -120, -120, -120, -120, |
220 | | -120, -120, -120, -112, -112, -112, -112, -112, |
221 | | -112, -112, -112, -112, -104, -104, -104, -104, |
222 | | -104, -104, -104, -104, -104, -104, -96, -96, |
223 | | -96, -96, -96, -88, -88, -88, -88, -88, |
224 | | -88, -88, -88, -88, -88, -88, -88, -80, |
225 | | -80, -80, -80, -80, -80, -72, -72, -72, |
226 | | -72, -72, -72, -72, -72, -64, -64, -64, |
227 | | -64, -64, -64, -64, -64, -56, -56, -56, |
228 | | -56, -56, -56, -56, -56, -56, -48, -48, |
229 | | -48, -48, -48, -48, -48, -48, -48, -48, |
230 | | -48, -32, -32, -32, -32, -32, -32, -32, |
231 | | -32, -32, -32, -32, -32, -32, -32, -32, |
232 | | -32, -32, 0, 0, 0, 0, 0, 0, |
233 | | 0, 0, 0, 0, 0, 0, 0, 0, |
234 | | 0, 0, 0, 0, 0, 0, 0, 0, |
235 | | }, |
236 | | { /* bi=5, bo=4 r=2.0:PSNR=64.441 */ |
237 | | 0, 0, 0, 0, 0, 0, 0, 0, |
238 | | 0, 0, 0, 0, 0, 0, 0, 0, |
239 | | 0, 0, 0, 0, 0, 0, 0, 0, |
240 | | 0, 0, 0, 0, 0, 0, 0, 0, |
241 | | 48, 48, 48, 48, 48, 48, 48, 48, |
242 | | 48, 48, 48, 48, 48, 48, 48, 48, |
243 | | 48, 48, 48, 48, 48, 48, 48, 48, |
244 | | 64, 64, 64, 64, 64, 64, 64, 64, |
245 | | 64, 64, 64, 64, 64, 64, 64, 64, |
246 | | 80, 80, 80, 80, 80, 80, 80, 80, |
247 | | 80, 80, 80, 80, 80, 88, 88, 88, |
248 | | 88, 88, 88, 88, 88, 88, 88, 88, |
249 | | 104, 104, 104, 104, 104, 104, 104, 104, |
250 | | 104, 104, 104, 112, 112, 112, 112, 112, |
251 | | 112, 112, 112, 112, 120, 120, 120, 120, |
252 | | 120, 120, 120, 120, 120, 120, 120, 120, |
253 | | 0, -120, -120, -120, -120, -120, -120, -120, |
254 | | -120, -120, -120, -120, -120, -112, -112, -112, |
255 | | -112, -112, -112, -112, -112, -112, -104, -104, |
256 | | -104, -104, -104, -104, -104, -104, -104, -104, |
257 | | -104, -88, -88, -88, -88, -88, -88, -88, |
258 | | -88, -88, -88, -88, -80, -80, -80, -80, |
259 | | -80, -80, -80, -80, -80, -80, -80, -80, |
260 | | -80, -64, -64, -64, -64, -64, -64, -64, |
261 | | -64, -64, -64, -64, -64, -64, -64, -64, |
262 | | -64, -48, -48, -48, -48, -48, -48, -48, |
263 | | -48, -48, -48, -48, -48, -48, -48, -48, |
264 | | -48, -48, -48, -48, -48, -48, -48, -48, |
265 | | -48, 0, 0, 0, 0, 0, 0, 0, |
266 | | 0, 0, 0, 0, 0, 0, 0, 0, |
267 | | 0, 0, 0, 0, 0, 0, 0, 0, |
268 | | 0, 0, 0, 0, 0, 0, 0, 0, |
269 | | }, |
270 | | { /* bi=5, bo=2 r=2.0:PSNR=43.175 */ |
271 | | 0, 0, 0, 0, 0, 0, 0, 0, |
272 | | 0, 0, 0, 0, 0, 0, 0, 0, |
273 | | 0, 0, 0, 0, 0, 0, 0, 0, |
274 | | 0, 0, 0, 0, 0, 0, 0, 0, |
275 | | 0, 0, 0, 0, 0, 0, 0, 0, |
276 | | 0, 0, 0, 0, 0, 0, 0, 0, |
277 | | 0, 0, 0, 0, 0, 0, 0, 0, |
278 | | 0, 0, 0, 0, 0, 0, 0, 0, |
279 | | 88, 88, 88, 88, 88, 88, 88, 88, |
280 | | 88, 88, 88, 88, 88, 88, 88, 88, |
281 | | 88, 88, 88, 88, 88, 88, 88, 88, |
282 | | 88, 88, 88, 88, 88, 88, 88, 88, |
283 | | 88, 88, 88, 88, 88, 88, 88, 88, |
284 | | 88, 88, 88, 88, 88, 88, 88, 88, |
285 | | 88, 88, 88, 88, 88, 88, 88, 88, |
286 | | 88, 88, 88, 88, 88, 88, 88, 88, |
287 | | 0, -88, -88, -88, -88, -88, -88, -88, |
288 | | -88, -88, -88, -88, -88, -88, -88, -88, |
289 | | -88, -88, -88, -88, -88, -88, -88, -88, |
290 | | -88, -88, -88, -88, -88, -88, -88, -88, |
291 | | -88, -88, -88, -88, -88, -88, -88, -88, |
292 | | -88, -88, -88, -88, -88, -88, -88, -88, |
293 | | -88, -88, -88, -88, -88, -88, -88, -88, |
294 | | -88, -88, -88, -88, -88, -88, -88, -88, |
295 | | -88, 0, 0, 0, 0, 0, 0, 0, |
296 | | 0, 0, 0, 0, 0, 0, 0, 0, |
297 | | 0, 0, 0, 0, 0, 0, 0, 0, |
298 | | 0, 0, 0, 0, 0, 0, 0, 0, |
299 | | 0, 0, 0, 0, 0, 0, 0, 0, |
300 | | 0, 0, 0, 0, 0, 0, 0, 0, |
301 | | 0, 0, 0, 0, 0, 0, 0, 0, |
302 | | 0, 0, 0, 0, 0, 0, 0, 0, |
303 | | } |
304 | | }; |
305 | | const static signed char* zywrleParam[3][3][3]={ |
306 | | {{zywrleConv[0],zywrleConv[2],zywrleConv[0]},{zywrleConv[0],zywrleConv[0],zywrleConv[0]},{zywrleConv[0],zywrleConv[0],zywrleConv[0]}}, |
307 | | {{zywrleConv[0],zywrleConv[3],zywrleConv[0]},{zywrleConv[1],zywrleConv[1],zywrleConv[1]},{zywrleConv[0],zywrleConv[0],zywrleConv[0]}}, |
308 | | {{zywrleConv[0],zywrleConv[3],zywrleConv[0]},{zywrleConv[2],zywrleConv[2],zywrleConv[2]},{zywrleConv[1],zywrleConv[1],zywrleConv[1]}}, |
309 | | }; |
310 | | # endif |
311 | | #endif |
312 | | |
313 | | static InlineX void Harr(signed char* pX0, signed char* pX1) |
314 | 0 | { |
315 | | /* Piecewise-Linear Harr(PLHarr) */ |
316 | 0 | int X0 = (int)*pX0, X1 = (int)*pX1; |
317 | 0 | int orgX0 = X0, orgX1 = X1; |
318 | 0 | if ((X0 ^ X1) & 0x80) { |
319 | | /* differ sign */ |
320 | 0 | X1 += X0; |
321 | 0 | if (((X1^orgX1)&0x80)==0) { |
322 | | /* |X1| > |X0| */ |
323 | 0 | X0 -= X1; /* H = -B */ |
324 | 0 | } |
325 | 0 | } else { |
326 | | /* same sign */ |
327 | 0 | X0 -= X1; |
328 | 0 | if (((X0 ^ orgX0) & 0x80) == 0) { |
329 | | /* |X0| > |X1| */ |
330 | 0 | X1 += X0; /* L = A */ |
331 | 0 | } |
332 | 0 | } |
333 | 0 | *pX0 = (signed char)X1; |
334 | 0 | *pX1 = (signed char)X0; |
335 | 0 | } |
336 | | /* |
337 | | 1D-Wavelet transform. |
338 | | |
339 | | In coefficients array, the famous 'pyramid' decomposition is well used. |
340 | | |
341 | | 1D Model: |
342 | | |L0L0L0L0|L0L0L0L0|H0H0H0H0|H0H0H0H0| : level 0 |
343 | | |L1L1L1L1|H1H1H1H1|H0H0H0H0|H0H0H0H0| : level 1 |
344 | | |
345 | | But this method needs line buffer because H/L is different position from X0/X1. |
346 | | So, I used 'interleave' decomposition instead of it. |
347 | | |
348 | | 1D Model: |
349 | | |L0H0L0H0|L0H0L0H0|L0H0L0H0|L0H0L0H0| : level 0 |
350 | | |L1H0H1H0|L1H0H1H0|L1H0H1H0|L1H0H1H0| : level 1 |
351 | | |
352 | | In this method, H/L and X0/X1 is always same position. |
353 | | This lead us to more speed and less memory. |
354 | | Of cause, the result of both method is quite same |
355 | | because its only difference is that coefficient position. |
356 | | */ |
357 | | static InlineX void WaveletLevel(int* data, int size, int l, int SkipPixel) |
358 | 0 | { |
359 | 0 | int s, ofs; |
360 | 0 | signed char* pX0; |
361 | 0 | signed char* end; |
362 | |
|
363 | 0 | pX0 = (signed char*)data; |
364 | 0 | s = (8<<l)*SkipPixel; |
365 | 0 | end = pX0+(size>>(l+1))*s; |
366 | 0 | s -= 2; |
367 | 0 | ofs = (4<<l)*SkipPixel; |
368 | 0 | while (pX0 < end) { |
369 | 0 | Harr(pX0, pX0+ofs); |
370 | 0 | pX0++; |
371 | 0 | Harr(pX0, pX0+ofs); |
372 | 0 | pX0++; |
373 | 0 | Harr(pX0, pX0+ofs); |
374 | 0 | pX0 += s; |
375 | 0 | } |
376 | 0 | } |
377 | | #define InvWaveletLevel(d,s,l,pix) WaveletLevel(d,s,l,pix) |
378 | | |
379 | | #ifdef ZYWRLE_ENCODE |
380 | | # ifndef ZYWRLE_QUANTIZE |
381 | | /* Type A:lower bit omitting of EZW style. */ |
382 | | static InlineX void FilterWaveletSquare(int* pBuf, int width, int height, int level, int l) |
383 | | { |
384 | | int r, s; |
385 | | int x, y; |
386 | | int* pH; |
387 | | const unsigned int* pM; |
388 | | |
389 | | pM = &(zywrleParam[level-1][l]); |
390 | | s = 2<<l; |
391 | | for (r = 1; r < 4; r++) { |
392 | | pH = pBuf; |
393 | | if (r & 0x01) |
394 | | pH += s>>1; |
395 | | if (r & 0x02) |
396 | | pH += (s>>1)*width; |
397 | | for (y = 0; y < height / s; y++) { |
398 | | for (x = 0; x < width / s; x++) { |
399 | | /* |
400 | | these are same following code. |
401 | | pH[x] = pH[x] / (~pM[x]+1) * (~pM[x]+1); |
402 | | ( round pH[x] with pM[x] bit ) |
403 | | '&' operator isn't 'round' but is 'floor'. |
404 | | So, we must offset when pH[x] is negative. |
405 | | */ |
406 | | if (((signed char*)pH)[0] & 0x80) |
407 | | ((signed char*)pH)[0] += ~((signed char*)pM)[0]; |
408 | | if (((signed char*)pH)[1] & 0x80) |
409 | | ((signed char*)pH)[1] += ~((signed char*)pM)[1]; |
410 | | if (((signed char*)pH)[2] & 0x80) |
411 | | ((signed char*)pH)[2] += ~((signed char*)pM)[2]; |
412 | | *pH &= *pM; |
413 | | pH += s; |
414 | | } |
415 | | pH += (s-1)*width; |
416 | | } |
417 | | } |
418 | | } |
419 | | # else |
420 | | /* |
421 | | Type B:Non liner quantization filter. |
422 | | |
423 | | Coefficients have Gaussian curve and smaller value which is |
424 | | large part of coefficients isn't more important than larger value. |
425 | | So, I use filter of Non liner quantize/dequantize table. |
426 | | In general, Non liner quantize formula is explained as following. |
427 | | |
428 | | y=f(x) = sign(x)*round( ((abs(x)/(2^7))^ r )* 2^(bo-1) )*2^(8-bo) |
429 | | x=f-1(y) = sign(y)*round( ((abs(y)/(2^7))^(1/r))* 2^(bi-1) )*2^(8-bi) |
430 | | ( r:power coefficient bi:effective MSB in input bo:effective MSB in output ) |
431 | | |
432 | | r < 1.0 : Smaller value is more important than larger value. |
433 | | r > 1.0 : Larger value is more important than smaller value. |
434 | | r = 1.0 : Liner quantization which is same with EZW style. |
435 | | |
436 | | r = 0.75 is famous non liner quantization used in MP3 audio codec. |
437 | | In contrast to audio data, larger value is important in wavelet coefficients. |
438 | | So, I select r = 2.0 table( quantize is x^2, dequantize sqrt(x) ). |
439 | | |
440 | | As compared with EZW style liner quantization, this filter tended to be |
441 | | more sharp edge and be more compression rate but be more blocking noise and be less quality. |
442 | | Especially, the surface of graphic objects has distinguishable noise in middle quality mode. |
443 | | |
444 | | We need only quantized-dequantized(filtered) value rather than quantized value itself |
445 | | because all values are packed or palette-lized in later ZRLE section. |
446 | | This lead us not to need to modify client decoder when we change |
447 | | the filtering procedure in future. |
448 | | Client only decodes coefficients given by encoder. |
449 | | */ |
450 | | static InlineX void FilterWaveletSquare(int* pBuf, int width, int height, int level, int l) |
451 | 0 | { |
452 | 0 | int r, s; |
453 | 0 | int x, y; |
454 | 0 | int* pH; |
455 | 0 | const signed char** pM; |
456 | |
|
457 | 0 | pM = zywrleParam[level-1][l]; |
458 | 0 | s = 2<<l; |
459 | 0 | for (r = 1; r < 4; r++) { |
460 | 0 | pH = pBuf; |
461 | 0 | if (r & 0x01) |
462 | 0 | pH += s>>1; |
463 | 0 | if (r & 0x02) |
464 | 0 | pH += (s>>1)*width; |
465 | 0 | for (y = 0; y < height / s; y++) { |
466 | 0 | for (x = 0; x < width / s; x++) { |
467 | 0 | ((signed char*)pH)[0] = pM[0][((unsigned char*)pH)[0]]; |
468 | 0 | ((signed char*)pH)[1] = pM[1][((unsigned char*)pH)[1]]; |
469 | 0 | ((signed char*)pH)[2] = pM[2][((unsigned char*)pH)[2]]; |
470 | 0 | pH += s; |
471 | 0 | } |
472 | 0 | pH += (s-1)*width; |
473 | 0 | } |
474 | 0 | } |
475 | 0 | } |
476 | | # endif |
477 | | |
478 | | static InlineX void Wavelet(int* pBuf, int width, int height, int level) |
479 | 0 | { |
480 | 0 | int l, s; |
481 | 0 | int* pTop; |
482 | 0 | int* pEnd; |
483 | |
|
484 | 0 | for (l = 0; l < level; l++) { |
485 | 0 | pTop = pBuf; |
486 | 0 | pEnd = pBuf+height*width; |
487 | 0 | s = width<<l; |
488 | 0 | while (pTop < pEnd) { |
489 | 0 | WaveletLevel(pTop, width, l, 1); |
490 | 0 | pTop += s; |
491 | 0 | } |
492 | 0 | pTop = pBuf; |
493 | 0 | pEnd = pBuf+width; |
494 | 0 | s = 1<<l; |
495 | 0 | while (pTop < pEnd) { |
496 | 0 | WaveletLevel(pTop, height,l, width); |
497 | 0 | pTop += s; |
498 | 0 | } |
499 | 0 | FilterWaveletSquare(pBuf, width, height, level, l); |
500 | 0 | } |
501 | 0 | } |
502 | | #endif |
503 | | #ifdef ZYWRLE_DECODE |
504 | | static InlineX void InvWavelet(int* pBuf, int width, int height, int level) |
505 | | { |
506 | | int l, s; |
507 | | int* pTop; |
508 | | int* pEnd; |
509 | | |
510 | | for (l = level - 1; l >= 0; l--) { |
511 | | pTop = pBuf; |
512 | | pEnd = pBuf+width; |
513 | | s = 1<<l; |
514 | | while (pTop < pEnd) { |
515 | | InvWaveletLevel(pTop, height,l, width); |
516 | | pTop += s; |
517 | | } |
518 | | pTop = pBuf; |
519 | | pEnd = pBuf+height*width; |
520 | | s = width<<l; |
521 | | while (pTop < pEnd) { |
522 | | InvWaveletLevel(pTop, width, l, 1); |
523 | | pTop += s; |
524 | | } |
525 | | } |
526 | | } |
527 | | #endif |
528 | | |
529 | | /* Load/Save coefficients stuffs. |
530 | | Coefficients manages as 24 bits little-endian pixel. */ |
531 | | #define ZYWRLE_LOAD_COEFF(pSrc,R,G,B) { \ |
532 | | R = ((signed char*)pSrc)[2]; \ |
533 | | G = ((signed char*)pSrc)[1]; \ |
534 | | B = ((signed char*)pSrc)[0]; \ |
535 | | } |
536 | 0 | #define ZYWRLE_SAVE_COEFF(pDst,R,G,B) { \ |
537 | 0 | ((signed char*)pDst)[2] = (signed char)R; \ |
538 | 0 | ((signed char*)pDst)[1] = (signed char)G; \ |
539 | 0 | ((signed char*)pDst)[0] = (signed char)B; \ |
540 | 0 | } |
541 | | |
542 | | /* |
543 | | RGB <=> YUV conversion stuffs. |
544 | | YUV coversion is explained as following formula in strict meaning: |
545 | | Y = 0.299R + 0.587G + 0.114B ( 0<=Y<=255) |
546 | | U = -0.169R - 0.331G + 0.500B (-128<=U<=127) |
547 | | V = 0.500R - 0.419G - 0.081B (-128<=V<=127) |
548 | | |
549 | | I use simple conversion RCT(reversible color transform) which is described |
550 | | in JPEG-2000 specification. |
551 | | Y = (R + 2G + B)/4 ( 0<=Y<=255) |
552 | | U = B-G (-256<=U<=255) |
553 | | V = R-G (-256<=V<=255) |
554 | | */ |
555 | | #define ROUND(x) (((x)<0)?0:(((x)>255)?255:(x))) |
556 | | /* RCT is N-bit RGB to N-bit Y and N+1-bit UV. |
557 | | For make Same N-bit, UV is lossy. |
558 | | More exact PLHarr, we reduce to odd range(-127<=x<=127). */ |
559 | 0 | #define ZYWRLE_RGBYUV1(R,G,B,Y,U,V,ymask,uvmask) { \ |
560 | 0 | Y = (R+(G<<1)+B)>>2; \ |
561 | 0 | U = B-G; \ |
562 | 0 | V = R-G; \ |
563 | 0 | Y -= 128; \ |
564 | 0 | U >>= 1; \ |
565 | 0 | V >>= 1; \ |
566 | 0 | Y &= ymask; \ |
567 | 0 | U &= uvmask; \ |
568 | 0 | V &= uvmask; \ |
569 | 0 | if (Y == -128) \ |
570 | 0 | Y += (0xFFFFFFFF-ymask+1); \ |
571 | 0 | if (U == -128) \ |
572 | 0 | U += (0xFFFFFFFF-uvmask+1); \ |
573 | 0 | if (V == -128) \ |
574 | 0 | V += (0xFFFFFFFF-uvmask+1); \ |
575 | 0 | } |
576 | | #define ZYWRLE_YUVRGB1(R,G,B,Y,U,V) { \ |
577 | | Y += 128; \ |
578 | | U <<= 1; \ |
579 | | V <<= 1; \ |
580 | | G = Y-((U+V)>>2); \ |
581 | | B = U+G; \ |
582 | | R = V+G; \ |
583 | | G = ROUND(G); \ |
584 | | B = ROUND(B); \ |
585 | | R = ROUND(R); \ |
586 | | } |
587 | | |
588 | | /* |
589 | | coefficient packing/unpacking stuffs. |
590 | | Wavelet transform makes 4 sub coefficient image from 1 original image. |
591 | | |
592 | | model with pyramid decomposition: |
593 | | +------+------+ |
594 | | | | | |
595 | | | L | Hx | |
596 | | | | | |
597 | | +------+------+ |
598 | | | | | |
599 | | | H | Hxy | |
600 | | | | | |
601 | | +------+------+ |
602 | | |
603 | | So, we must transfer each sub images individually in strict meaning. |
604 | | But at least ZRLE meaning, following one decompositon image is same as |
605 | | avobe individual sub image. I use this format. |
606 | | (Strictly saying, transfer order is reverse(Hxy->Hy->Hx->L) |
607 | | for simplified procedure for any wavelet level.) |
608 | | |
609 | | +------+------+ |
610 | | | L | |
611 | | +------+------+ |
612 | | | Hx | |
613 | | +------+------+ |
614 | | | Hy | |
615 | | +------+------+ |
616 | | | Hxy | |
617 | | +------+------+ |
618 | | */ |
619 | | #define INC_PTR(data) \ |
620 | 0 | data++; \ |
621 | 0 | if( data-pData >= (w+uw) ){ \ |
622 | 0 | data += scanline-(w+uw); \ |
623 | 0 | pData = data; \ |
624 | 0 | } |
625 | | |
626 | | #define ZYWRLE_TRANSFER_COEFF(pBuf,data,r,w,h,scanline,level,TRANS) \ |
627 | 0 | pH = pBuf; \ |
628 | 0 | s = 2<<level; \ |
629 | 0 | if (r & 0x01) \ |
630 | 0 | pH += s>>1; \ |
631 | 0 | if (r & 0x02) \ |
632 | 0 | pH += (s>>1)*w; \ |
633 | 0 | pEnd = pH+h*w; \ |
634 | 0 | while (pH < pEnd) { \ |
635 | 0 | pLine = pH+w; \ |
636 | 0 | while (pH < pLine) { \ |
637 | 0 | TRANS \ |
638 | 0 | INC_PTR(data) \ |
639 | 0 | pH += s; \ |
640 | 0 | } \ |
641 | 0 | pH += (s-1)*w; \ |
642 | 0 | } |
643 | | |
644 | | #define ZYWRLE_PACK_COEFF(pBuf,data,r,width,height,scanline,level) \ |
645 | 0 | ZYWRLE_TRANSFER_COEFF(pBuf,data,r,width,height,scanline,level,ZYWRLE_LOAD_COEFF(pH,R,G,B);ZYWRLE_SAVE_PIXEL(data,R,G,B);) |
646 | | |
647 | | #define ZYWRLE_UNPACK_COEFF(pBuf,data,r,width,height,scanline,level) \ |
648 | | ZYWRLE_TRANSFER_COEFF(pBuf,data,r,width,height,scanline,level,ZYWRLE_LOAD_PIXEL(data,R,G,B);ZYWRLE_SAVE_COEFF(pH,R,G,B);) |
649 | | |
650 | | #define ZYWRLE_SAVE_UNALIGN(data,TRANS) \ |
651 | 0 | pTop = pBuf+w*h; \ |
652 | 0 | pEnd = pBuf + (w+uw)*(h+uh); \ |
653 | 0 | while (pTop < pEnd) { \ |
654 | 0 | TRANS \ |
655 | 0 | INC_PTR(data) \ |
656 | 0 | pTop++; \ |
657 | 0 | } |
658 | | |
659 | | #define ZYWRLE_LOAD_UNALIGN(data,TRANS) \ |
660 | 0 | pTop = pBuf+w*h; \ |
661 | 0 | if (uw) { \ |
662 | 0 | pData= data + w; \ |
663 | 0 | pEnd = (int*)(pData+ h*scanline); \ |
664 | 0 | while (pData < (PIXEL_T*)pEnd) { \ |
665 | 0 | pLine = (int*)(pData + uw); \ |
666 | 0 | while (pData < (PIXEL_T*)pLine) { \ |
667 | 0 | TRANS \ |
668 | 0 | pData++; \ |
669 | 0 | pTop++; \ |
670 | 0 | } \ |
671 | 0 | pData += scanline-uw; \ |
672 | 0 | } \ |
673 | 0 | } \ |
674 | 0 | if (uh) { \ |
675 | 0 | pData= data + h*scanline; \ |
676 | 0 | pEnd = (int*)(pData+ uh*scanline); \ |
677 | 0 | while (pData < (PIXEL_T*)pEnd) { \ |
678 | 0 | pLine = (int*)(pData + w); \ |
679 | 0 | while (pData < (PIXEL_T*)pLine) { \ |
680 | 0 | TRANS \ |
681 | 0 | pData++; \ |
682 | 0 | pTop++; \ |
683 | 0 | } \ |
684 | 0 | pData += scanline-w; \ |
685 | 0 | } \ |
686 | 0 | } \ |
687 | 0 | if (uw && uh) { \ |
688 | 0 | pData= data + w+ h*scanline; \ |
689 | 0 | pEnd = (int*)(pData+ uh*scanline); \ |
690 | 0 | while (pData < (PIXEL_T*)pEnd) { \ |
691 | 0 | pLine = (int*)(pData + uw); \ |
692 | 0 | while (pData < (PIXEL_T*)pLine) { \ |
693 | 0 | TRANS \ |
694 | 0 | pData++; \ |
695 | 0 | pTop++; \ |
696 | 0 | } \ |
697 | 0 | pData += scanline-uw; \ |
698 | 0 | } \ |
699 | 0 | } |
700 | | |
701 | | static InlineX void zywrleCalcSize(int* pW, int* pH, int level) |
702 | 0 | { |
703 | 0 | *pW &= ~((1<<level)-1); |
704 | 0 | *pH &= ~((1<<level)-1); |
705 | 0 | } |
706 | | |
707 | | #endif /* ZYWRLE_ONCE */ |
708 | | |
709 | | #ifndef CPIXEL |
710 | | #ifdef ZYWRLE_ENCODE |
711 | | static InlineX void ZYWRLE_RGBYUV(int* pBuf, PIXEL_T* data, int width, int height, int scanline) |
712 | 0 | { |
713 | 0 | int R, G, B; |
714 | 0 | int Y, U, V; |
715 | 0 | int* pLine; |
716 | 0 | int* pEnd; |
717 | 0 | pEnd = pBuf+height*width; |
718 | 0 | while (pBuf < pEnd) { |
719 | 0 | pLine = pBuf+width; |
720 | 0 | while (pBuf < pLine) { |
721 | 0 | ZYWRLE_LOAD_PIXEL(data,R,G,B); |
722 | 0 | ZYWRLE_RGBYUV1(R,G,B,Y,U,V,ZYWRLE_YMASK,ZYWRLE_UVMASK); |
723 | 0 | ZYWRLE_SAVE_COEFF(pBuf,V,Y,U); |
724 | 0 | pBuf++; |
725 | 0 | data++; |
726 | 0 | } |
727 | 0 | data += scanline-width; |
728 | 0 | } |
729 | 0 | } Unexecuted instantiation: zrle.c:zywrleRGBYUV15LE Unexecuted instantiation: zrle.c:zywrleRGBYUV15BE Unexecuted instantiation: zrle.c:zywrleRGBYUV16LE Unexecuted instantiation: zrle.c:zywrleRGBYUV16BE Unexecuted instantiation: zrle.c:zywrleRGBYUV32LE Unexecuted instantiation: zrle.c:zywrleRGBYUV32BE |
730 | | #endif |
731 | | #ifdef ZYWRLE_DECODE |
732 | | static InlineX void ZYWRLE_YUVRGB(int* pBuf, PIXEL_T* data, int width, int height, int scanline) { |
733 | | int R, G, B; |
734 | | int Y, U, V; |
735 | | int* pLine; |
736 | | int* pEnd; |
737 | | pEnd = pBuf+height*width; |
738 | | while (pBuf < pEnd) { |
739 | | pLine = pBuf+width; |
740 | | while (pBuf < pLine) { |
741 | | ZYWRLE_LOAD_COEFF(pBuf,V,Y,U); |
742 | | ZYWRLE_YUVRGB1(R,G,B,Y,U,V); |
743 | | ZYWRLE_SAVE_PIXEL(data,R,G,B); |
744 | | pBuf++; |
745 | | data++; |
746 | | } |
747 | | data += scanline-width; |
748 | | } |
749 | | } |
750 | | #endif |
751 | | |
752 | | #ifdef ZYWRLE_ENCODE |
753 | 0 | PIXEL_T* ZYWRLE_ANALYZE(PIXEL_T* dst, PIXEL_T* src, int w, int h, int scanline, int level, int* pBuf) { |
754 | 0 | int l; |
755 | 0 | int uw = w; |
756 | 0 | int uh = h; |
757 | 0 | int* pTop; |
758 | 0 | int* pEnd; |
759 | 0 | int* pLine; |
760 | 0 | PIXEL_T* pData; |
761 | 0 | int R, G, B; |
762 | 0 | int s; |
763 | 0 | int* pH; |
764 | |
|
765 | 0 | zywrleCalcSize(&w, &h, level); |
766 | 0 | if (w == 0 || h == 0) |
767 | 0 | return NULL; |
768 | 0 | uw -= w; |
769 | 0 | uh -= h; |
770 | |
|
771 | 0 | pData = dst; |
772 | 0 | ZYWRLE_LOAD_UNALIGN(src,*(PIXEL_T*)pTop=*pData;) |
773 | 0 | ZYWRLE_RGBYUV(pBuf, src, w, h, scanline); |
774 | 0 | Wavelet(pBuf, w, h, level); |
775 | 0 | for (l = 0; l < level; l++) { |
776 | 0 | ZYWRLE_PACK_COEFF(pBuf, dst, 3, w, h, scanline, l); |
777 | 0 | ZYWRLE_PACK_COEFF(pBuf, dst, 2, w, h, scanline, l); |
778 | 0 | ZYWRLE_PACK_COEFF(pBuf, dst, 1, w, h, scanline, l); |
779 | 0 | if (l == level - 1) { |
780 | 0 | ZYWRLE_PACK_COEFF(pBuf, dst, 0, w, h, scanline, l); |
781 | 0 | } |
782 | 0 | } |
783 | 0 | ZYWRLE_SAVE_UNALIGN(dst,*dst=*(PIXEL_T*)pTop;) |
784 | 0 | return dst; |
785 | 0 | } Unexecuted instantiation: zywrleAnalyze15LE Unexecuted instantiation: zywrleAnalyze15BE Unexecuted instantiation: zywrleAnalyze16LE Unexecuted instantiation: zywrleAnalyze16BE Unexecuted instantiation: zywrleAnalyze32LE Unexecuted instantiation: zywrleAnalyze32BE |
786 | | #endif |
787 | | #ifdef ZYWRLE_DECODE |
788 | | PIXEL_T* ZYWRLE_SYNTHESIZE(PIXEL_T* dst, PIXEL_T* src, int w, int h, int scanline, int level, int* pBuf) |
789 | | { |
790 | | int l; |
791 | | int uw = w; |
792 | | int uh = h; |
793 | | int* pTop; |
794 | | int* pEnd; |
795 | | int* pLine; |
796 | | PIXEL_T* pData; |
797 | | int R, G, B; |
798 | | int s; |
799 | | int* pH; |
800 | | |
801 | | zywrleCalcSize(&w, &h, level); |
802 | | if (w == 0 || h == 0) |
803 | | return NULL; |
804 | | uw -= w; |
805 | | uh -= h; |
806 | | |
807 | | pData = src; |
808 | | for (l = 0; l < level; l++) { |
809 | | ZYWRLE_UNPACK_COEFF(pBuf, src, 3, w, h, scanline, l); |
810 | | ZYWRLE_UNPACK_COEFF(pBuf, src, 2, w, h, scanline, l); |
811 | | ZYWRLE_UNPACK_COEFF(pBuf, src, 1, w, h, scanline, l); |
812 | | if (l == level - 1) { |
813 | | ZYWRLE_UNPACK_COEFF(pBuf, src, 0, w, h, scanline, l); |
814 | | } |
815 | | } |
816 | | ZYWRLE_SAVE_UNALIGN(src,*(PIXEL_T*)pTop=*src;) |
817 | | InvWavelet(pBuf, w, h, level); |
818 | | ZYWRLE_YUVRGB(pBuf, dst, w, h, scanline); |
819 | | ZYWRLE_LOAD_UNALIGN(dst,*pData=*(PIXEL_T*)pTop;) |
820 | | return src; |
821 | | } |
822 | | #endif |
823 | | #endif /* CPIXEL */ |
824 | | |
825 | | #undef ZYWRLE_RGBYUV |
826 | | #undef ZYWRLE_YUVRGB |
827 | | #undef ZYWRLE_LOAD_PIXEL |
828 | | #undef ZYWRLE_SAVE_PIXEL |