OpenJPH
Open-source implementation of JPEG2000 Part-15
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ojph_params.cpp
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1//***************************************************************************/
2// This software is released under the 2-Clause BSD license, included
3// below.
4//
5// Copyright (c) 2019, Aous Naman
6// Copyright (c) 2019, Kakadu Software Pty Ltd, Australia
7// Copyright (c) 2019, The University of New South Wales, Australia
8//
9// Redistribution and use in source and binary forms, with or without
10// modification, are permitted provided that the following conditions are
11// met:
12//
13// 1. Redistributions of source code must retain the above copyright
14// notice, this list of conditions and the following disclaimer.
15//
16// 2. Redistributions in binary form must reproduce the above copyright
17// notice, this list of conditions and the following disclaimer in the
18// documentation and/or other materials provided with the distribution.
19//
20// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS
21// IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22// TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A
23// PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
24// HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
25// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
26// TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
27// PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
28// LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
29// NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
30// SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31//***************************************************************************/
32// This file is part of the OpenJPH software implementation.
33// File: ojph_params.cpp
34// Author: Aous Naman
35// Date: 28 August 2019
36//***************************************************************************/
37
38#define _USE_MATH_DEFINES
39#include <cmath>
40
41#include "ojph_base.h"
42#include "ojph_file.h"
43#include "ojph_params.h"
44
45#include "ojph_params_local.h"
46#include "ojph_message.h"
47
48namespace ojph {
49
51 //
52 //
53 //
54 //
55 //
57
60 {
61 state->Xsiz = dims.x;
62 state->Ysiz = dims.y;
63 }
64
67 {
68 state->XTsiz = s.w;
69 state->YTsiz = s.h;
70 }
71
74 { // WARNING need to check if these are valid
75 state->XOsiz = offset.x;
76 state->YOsiz = offset.y;
77 }
78
81 { // WARNING need to check if these are valid
82 state->XTOsiz = offset.x;
83 state->YTOsiz = offset.y;
84 }
85
88 {
89 state->set_num_components(num_comps);
90 }
91
93 void param_siz::set_component(ui32 comp_num, const point& downsampling,
94 ui32 bit_depth, bool is_signed)
95 {
96 state->set_comp_info(comp_num, downsampling, bit_depth, is_signed);
97 }
98
101 {
102 return point(state->Xsiz, state->Ysiz);
103 }
104
107 {
108 return point(state->XOsiz, state->YOsiz);
109 }
110
113 {
114 return size(state->XTsiz, state->YTsiz);
115 }
116
119 {
120 return point(state->XTOsiz, state->YTOsiz);
121 }
122
125 {
126 return state->Csiz;
127 }
128
131 {
132 return state->get_bit_depth(comp_num);
133 }
134
136 bool param_siz::is_signed(ui32 comp_num) const
137 {
138 return state->is_signed(comp_num);
139 }
140
143 {
144 return state->get_downsampling(comp_num);
145 }
146
149 {
150 return state->get_recon_width(comp_num);
151 }
152
155 {
156 return state->get_recon_height(comp_num);
157 }
158
160 //
161 //
162 //
163 //
164 //
166
168 void param_cod::set_num_decomposition(ui32 num_decompositions)
169 {
170 if (num_decompositions > 32)
171 OJPH_ERROR(0x00050001,
172 "maximum number of decompositions cannot exceed 32");
173 state->SPcod.num_decomp = (ui8)num_decompositions;
174 }
175
178 {
179 ui32 log_width = 31 - count_leading_zeros(width);
180 ui32 log_height = 31 - count_leading_zeros(height);
181 if (width == 0 || width != (1u << log_width)
182 || height == 0 || height != (1u << log_height)
183 || log_width < 2 || log_height < 2
184 || log_width + log_height > 12)
185 OJPH_ERROR(0x00050011, "incorrect code block dimensions");
186 state->SPcod.block_width = (ui8)(log_width - 2);
187 state->SPcod.block_height = (ui8)(log_height - 2);
188 }
189
191 void param_cod::set_precinct_size(int num_levels, size* precinct_size)
192 {
193 if (num_levels == 0 || precinct_size == NULL)
194 state->Scod &= 0xFE;
195 else
196 {
197 state->Scod |= 1;
198 for (int i = 0; i <= state->SPcod.num_decomp; ++i)
199 {
200 size t = precinct_size[i < num_levels ? i : num_levels - 1];
201
202 ui32 PPx = 31 - count_leading_zeros(t.w);
203 ui32 PPy = 31 - count_leading_zeros(t.h);
204 if (t.w == 0 || t.h == 0)
205 OJPH_ERROR(0x00050021, "precinct width or height cannot be 0");
206 if (t.w != (1u<<PPx) || t.h != (1u<<PPy))
207 OJPH_ERROR(0x00050022,
208 "precinct width and height should be a power of 2");
209 if (PPx > 15 || PPy > 15)
210 OJPH_ERROR(0x00050023, "precinct size is too large");
211 if (i > 0 && (PPx == 0 || PPy == 0))
212 OJPH_ERROR(0x00050024, "precinct size is too small");
213 state->SPcod.precinct_size[i] = (ui8)(PPx | (PPy << 4));
214 }
215 }
216 }
217
219 void param_cod::set_progression_order(const char *name)
220 {
221 int prog_order = 0;
222 size_t len = strlen(name);
223 if (len == 4)
224 {
225 if (strncmp(name, OJPH_PO_STRING_LRCP, 4) == 0)
226 prog_order = OJPH_PO_LRCP;
227 else if (strncmp(name, OJPH_PO_STRING_RLCP, 4) == 0)
228 prog_order = OJPH_PO_RLCP;
229 else if (strncmp(name, OJPH_PO_STRING_RPCL, 4) == 0)
230 prog_order = OJPH_PO_RPCL;
231 else if (strncmp(name, OJPH_PO_STRING_PCRL, 4) == 0)
232 prog_order = OJPH_PO_PCRL;
233 else if (strncmp(name, OJPH_PO_STRING_CPRL, 4) == 0)
234 prog_order = OJPH_PO_CPRL;
235 else
236 OJPH_ERROR(0x00050031, "unknown progression order");
237 }
238 else
239 OJPH_ERROR(0x00050032, "improper progression order");
240
241
242 state->SGCod.prog_order = (ui8)prog_order;
243 }
244
246 void param_cod::set_color_transform(bool color_transform)
247 {
248 state->employ_color_transform(color_transform ? 1 : 0);
249 }
250
252 void param_cod::set_reversible(bool reversible)
253 {
254 state->set_reversible(reversible);
255 }
256
259 {
260 local::param_cod *p = state->get_coc(component_idx);
261 if (p == state) // no COC segment marker for this component
262 p = state->add_coc_object(component_idx);
263 return param_coc(p);
264 }
265
268 {
269 return state->get_num_decompositions();
270 }
271
274 {
275 return state->get_block_dims();
276 }
277
280 {
281 return state->get_log_block_dims();
282 }
283
286 {
287 return state->is_reversible();
288 }
289
292 {
293 return state->get_precinct_size(level_num);
294 }
295
298 {
299 return state->get_log_precinct_size(level_num);
300 }
301
304 {
305 return state->SGCod.prog_order;
306 }
307
310 {
311 if (state->SGCod.prog_order == OJPH_PO_LRCP)
312 return OJPH_PO_STRING_LRCP;
313 else if (state->SGCod.prog_order == OJPH_PO_RLCP)
314 return OJPH_PO_STRING_RLCP;
315 else if (state->SGCod.prog_order == OJPH_PO_RPCL)
316 return OJPH_PO_STRING_RPCL;
317 else if (state->SGCod.prog_order == OJPH_PO_PCRL)
318 return OJPH_PO_STRING_PCRL;
319 else if (state->SGCod.prog_order == OJPH_PO_CPRL)
320 return OJPH_PO_STRING_CPRL;
321 else
322 assert(0);
323 return "";
324 }
325
328 {
329 return state->SGCod.num_layers;
330 }
331
334 {
335 return state->is_employing_color_transform();
336 }
337
340 {
341 return state->packets_may_use_sop();
342 }
343
346 {
347 return state->packets_use_eph();
348 }
349
352 {
353 return state->get_block_vertical_causality();
354 }
355
357 //
358 //
359 //
360 //
361 //
363
365 void param_coc::set_num_decomposition(ui32 num_decompositions)
366 { ojph::param_cod(state).set_num_decomposition(num_decompositions); }
367
370 { ojph::param_cod(state).set_block_dims(width, height); }
371
373 void param_coc::set_precinct_size(int num_levels, size* precinct_size)
374 { ojph::param_cod(state).set_precinct_size(num_levels, precinct_size); }
375
377 void param_coc::set_reversible(bool reversible)
378 { ojph::param_cod(state).set_reversible(reversible); }
379
383
387
391
395
398 { return ojph::param_cod(state).get_precinct_size(level_num); }
399
403
407
408
410 //
411 //
412 //
413 //
414 //
416
419 {
420 state->set_delta(delta);
421 }
422
424 void param_qcd::set_irrev_quant(ui32 comp_idx, float delta)
425 {
426 state->set_delta(comp_idx, delta);
427 }
428
430 //
431 //
432 //
433 //
434 //
436
439 {
440 state->set_nonlinear_transform(comp_num, nl_type);
441 }
442
444 bool param_nlt::get_nonlinear_transform(ui32 comp_num, ui8& bit_depth,
445 bool& is_signed, ui8& nl_type) const
446 {
447 return state->get_nonlinear_transform(comp_num, bit_depth, is_signed,
448 nl_type);
449 }
450
452 //
453 //
454 //
455 //
456 //
458
460 void comment_exchange::set_string(const char* str)
461 {
462 size_t t = strlen(str);
463 if (len > 65531)
464 OJPH_ERROR(0x000500C1,
465 "COM marker string length cannot be larger than 65531");
466 this->data = str;
467 this->len = (ui16)t;
468 this->Rcom = 1;
469 }
470
473 {
474 if (len > 65531)
475 OJPH_ERROR(0x000500C2,
476 "COM marker string length cannot be larger than 65531");
477 this->data = data;
478 this->len = len;
479 this->Rcom = 0;
480 }
481
483 //
484 //
485 // LOCAL
486 //
487 //
489
490 namespace local {
491
493 static inline
495 {
496 return (ui16)((t << 8) | (t >> 8));
497 }
498
500 static inline
502 {
503 ui32 u = swap_byte((ui16)(t & 0xFFFFu));
504 u <<= 16;
505 u |= swap_byte((ui16)(t >> 16));
506 return u;
507 }
508
510 static inline
512 {
513 ui64 u = swap_byte((ui32)(t & 0xFFFFFFFFu));
514 u <<= 32;
515 u |= swap_byte((ui32)(t >> 32));
516 return u;
517 }
518
520 //
521 //
522 //
523 //
524 //
526
528 //static
530 {
531 public:
532 static float get_gain_l(ui32 num_decomp, bool reversible)
533 { return reversible ? gain_5x3_l[num_decomp] : gain_9x7_l[num_decomp]; }
534 static float get_gain_h(ui32 num_decomp, bool reversible)
535 { return reversible ? gain_5x3_h[num_decomp] : gain_9x7_h[num_decomp]; }
536
537 private:
538 static const float gain_9x7_l[34];
539 static const float gain_9x7_h[34];
540 static const float gain_5x3_l[34];
541 static const float gain_5x3_h[34];
542 };
543
545 const float sqrt_energy_gains::gain_9x7_l[34] = { 1.0000e+00f,
546 1.4021e+00f, 2.0304e+00f, 2.9012e+00f, 4.1153e+00f, 5.8245e+00f,
547 8.2388e+00f, 1.1652e+01f, 1.6479e+01f, 2.3304e+01f, 3.2957e+01f,
548 4.6609e+01f, 6.5915e+01f, 9.3217e+01f, 1.3183e+02f, 1.8643e+02f,
549 2.6366e+02f, 3.7287e+02f, 5.2732e+02f, 7.4574e+02f, 1.0546e+03f,
550 1.4915e+03f, 2.1093e+03f, 2.9830e+03f, 4.2185e+03f, 5.9659e+03f,
551 8.4371e+03f, 1.1932e+04f, 1.6874e+04f, 2.3864e+04f, 3.3748e+04f,
552 4.7727e+04f, 6.7496e+04f, 9.5454e+04f };
553 const float sqrt_energy_gains::gain_9x7_h[34] = { 1.4425e+00f,
554 1.9669e+00f, 2.8839e+00f, 4.1475e+00f, 5.8946e+00f, 8.3472e+00f,
555 1.1809e+01f, 1.6701e+01f, 2.3620e+01f, 3.3403e+01f, 4.7240e+01f,
556 6.6807e+01f, 9.4479e+01f, 1.3361e+02f, 1.8896e+02f, 2.6723e+02f,
557 3.7792e+02f, 5.3446e+02f, 7.5583e+02f, 1.0689e+03f, 1.5117e+03f,
558 2.1378e+03f, 3.0233e+03f, 4.2756e+03f, 6.0467e+03f, 8.5513e+03f,
559 1.2093e+04f, 1.7103e+04f, 2.4187e+04f, 3.4205e+04f, 4.8373e+04f,
560 6.8410e+04f, 9.6747e+04f, 1.3682e+05f };
561 const float sqrt_energy_gains::gain_5x3_l[34] = { 1.0000e+00f,
562 1.2247e+00f, 1.3229e+00f, 1.5411e+00f, 1.7139e+00f, 1.9605e+00f,
563 2.2044e+00f, 2.5047e+00f, 2.8277e+00f, 3.2049e+00f, 3.6238e+00f,
564 4.1033e+00f, 4.6423e+00f, 5.2548e+00f, 5.9462e+00f, 6.7299e+00f,
565 7.6159e+00f, 8.6193e+00f, 9.7544e+00f, 1.1039e+01f, 1.2493e+01f,
566 1.4139e+01f, 1.6001e+01f, 1.8108e+01f, 2.0493e+01f, 2.3192e+01f,
567 2.6246e+01f, 2.9702e+01f, 3.3614e+01f, 3.8041e+01f, 4.3051e+01f,
568 4.8721e+01f, 5.5138e+01f, 6.2399e+01f };
569 const float sqrt_energy_gains::gain_5x3_h[34] = { 1.0458e+00f,
570 1.3975e+00f, 1.4389e+00f, 1.7287e+00f, 1.8880e+00f, 2.1841e+00f,
571 2.4392e+00f, 2.7830e+00f, 3.1341e+00f, 3.5576e+00f, 4.0188e+00f,
572 4.5532e+00f, 5.1494e+00f, 5.8301e+00f, 6.5963e+00f, 7.4663e+00f,
573 8.4489e+00f, 9.5623e+00f, 1.0821e+01f, 1.2247e+01f, 1.3860e+01f,
574 1.5685e+01f, 1.7751e+01f, 2.0089e+01f, 2.2735e+01f, 2.5729e+01f,
575 2.9117e+01f, 3.2952e+01f, 3.7292e+01f, 4.2203e+01f, 4.7761e+01f,
576 5.4051e+01f, 6.1170e+01f, 6.9226e+01f };
577
579 //static
581 {
582 public:
583 static float get_bibo_gain_l(ui32 num_decomp, bool reversible)
584 { return reversible ? gain_5x3_l[num_decomp] : gain_9x7_l[num_decomp]; }
585 static float get_bibo_gain_h(ui32 num_decomp, bool reversible)
586 { return reversible ? gain_5x3_h[num_decomp] : gain_9x7_h[num_decomp]; }
587
588 private:
589 static const float gain_9x7_l[34];
590 static const float gain_9x7_h[34];
591 static const float gain_5x3_l[34];
592 static const float gain_5x3_h[34];
593 };
594
596 const float bibo_gains::gain_9x7_l[34] = { 1.0000e+00f, 1.3803e+00f,
597 1.3328e+00f, 1.3067e+00f, 1.3028e+00f, 1.3001e+00f, 1.2993e+00f,
598 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f,
599 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f,
600 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f,
601 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f,
602 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f, 1.2992e+00f,
603 1.2992e+00f, 1.2992e+00f };
604 const float bibo_gains::gain_9x7_h[34] = { 1.2976e+00f, 1.3126e+00f,
605 1.2757e+00f, 1.2352e+00f, 1.2312e+00f, 1.2285e+00f, 1.2280e+00f,
606 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f,
607 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f,
608 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f,
609 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f,
610 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f, 1.2278e+00f,
611 1.2278e+00f, 1.2278e+00f };
612 const float bibo_gains::gain_5x3_l[34] = { 1.0000e+00f, 1.5000e+00f,
613 1.6250e+00f, 1.6875e+00f, 1.6963e+00f, 1.7067e+00f, 1.7116e+00f,
614 1.7129e+00f, 1.7141e+00f, 1.7145e+00f, 1.7151e+00f, 1.7152e+00f,
615 1.7155e+00f, 1.7155e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f,
616 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f,
617 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f,
618 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f, 1.7156e+00f,
619 1.7156e+00f, 1.7156e+00f };
620 const float bibo_gains::gain_5x3_h[34] = { 2.0000e+00f, 2.5000e+00f,
621 2.7500e+00f, 2.8047e+00f, 2.8198e+00f, 2.8410e+00f, 2.8558e+00f,
622 2.8601e+00f, 2.8628e+00f, 2.8656e+00f, 2.8662e+00f, 2.8667e+00f,
623 2.8669e+00f, 2.8670e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f,
624 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f,
625 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f,
626 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f, 2.8671e+00f,
627 2.8671e+00f, 2.8671e+00f };
628
629
631 //
632 //
633 //
634 //
635 //
637
640 {
641 //marker size excluding header
642 Lsiz = (ui16)(38 + 3 * Csiz);
643
644 ui8 buf[4];
645 bool result = true;
646
647 *(ui16*)buf = JP2K_MARKER::SIZ;
648 *(ui16*)buf = swap_byte(*(ui16*)buf);
649 result &= file->write(&buf, 2) == 2;
650 *(ui16*)buf = swap_byte(Lsiz);
651 result &= file->write(&buf, 2) == 2;
652 *(ui16*)buf = swap_byte(Rsiz);
653 result &= file->write(&buf, 2) == 2;
654 *(ui32*)buf = swap_byte(Xsiz);
655 result &= file->write(&buf, 4) == 4;
656 *(ui32*)buf = swap_byte(Ysiz);
657 result &= file->write(&buf, 4) == 4;
658 *(ui32*)buf = swap_byte(XOsiz);
659 result &= file->write(&buf, 4) == 4;
660 *(ui32*)buf = swap_byte(YOsiz);
661 result &= file->write(&buf, 4) == 4;
662 *(ui32*)buf = swap_byte(XTsiz);
663 result &= file->write(&buf, 4) == 4;
664 *(ui32*)buf = swap_byte(YTsiz);
665 result &= file->write(&buf, 4) == 4;
666 *(ui32*)buf = swap_byte(XTOsiz);
667 result &= file->write(&buf, 4) == 4;
668 *(ui32*)buf = swap_byte(YTOsiz);
669 result &= file->write(&buf, 4) == 4;
670 *(ui16*)buf = swap_byte(Csiz);
671 result &= file->write(&buf, 2) == 2;
672 for (int c = 0; c < Csiz; ++c)
673 {
674 buf[0] = cptr[c].SSiz;
675 buf[1] = cptr[c].XRsiz;
676 buf[2] = cptr[c].YRsiz;
677 result &= file->write(&buf, 3) == 3;
678 }
679
680 return result;
681 }
682
685 {
686 if (file->read(&Lsiz, 2) != 2)
687 OJPH_ERROR(0x00050041, "error reading SIZ marker");
689 int num_comps = (Lsiz - 38) / 3;
690 if (Lsiz != 38 + 3 * num_comps)
691 OJPH_ERROR(0x00050042, "error in SIZ marker length");
692 if (file->read(&Rsiz, 2) != 2)
693 OJPH_ERROR(0x00050043, "error reading SIZ marker");
695 if ((Rsiz & 0x4000) == 0)
696 OJPH_ERROR(0x00050044,
697 "Rsiz bit 14 is not set (this is not a JPH file)");
698 if ((Rsiz & 0x8000) != 0 && (Rsiz & 0xD5F) != 0)
699 OJPH_WARN(0x00050001, "Rsiz in SIZ has unimplemented fields");
700 if (file->read(&Xsiz, 4) != 4)
701 OJPH_ERROR(0x00050045, "error reading SIZ marker");
703 if (file->read(&Ysiz, 4) != 4)
704 OJPH_ERROR(0x00050046, "error reading SIZ marker");
706 if (file->read(&XOsiz, 4) != 4)
707 OJPH_ERROR(0x00050047, "error reading SIZ marker");
709 if (file->read(&YOsiz, 4) != 4)
710 OJPH_ERROR(0x00050048, "error reading SIZ marker");
712 if (file->read(&XTsiz, 4) != 4)
713 OJPH_ERROR(0x00050049, "error reading SIZ marker");
715 if (file->read(&YTsiz, 4) != 4)
716 OJPH_ERROR(0x0005004A, "error reading SIZ marker");
718 if (file->read(&XTOsiz, 4) != 4)
719 OJPH_ERROR(0x0005004B, "error reading SIZ marker");
721 if (file->read(&YTOsiz, 4) != 4)
722 OJPH_ERROR(0x0005004C, "error reading SIZ marker");
724 if (file->read(&Csiz, 2) != 2)
725 OJPH_ERROR(0x0005004D, "error reading SIZ marker");
727 if (Csiz != num_comps)
728 OJPH_ERROR(0x0005004E, "Csiz does not match the SIZ marker size");
730 for (int c = 0; c < Csiz; ++c)
731 {
732 if (file->read(&cptr[c].SSiz, 1) != 1)
733 OJPH_ERROR(0x00050051, "error reading SIZ marker");
734 if (file->read(&cptr[c].XRsiz, 1) != 1)
735 OJPH_ERROR(0x00050052, "error reading SIZ marker");
736 if (file->read(&cptr[c].YRsiz, 1) != 1)
737 OJPH_ERROR(0x00050053, "error reading SIZ marker");
738 }
739
740 ws_kern_support_needed = (Rsiz & 0x20) != 0;
741 dfs_support_needed = (Rsiz & 0x80) != 0;
742 }
743
746 {
747 assert(comp_num < get_num_components());
748
749 point factor(1u << skipped_resolutions, 1u << skipped_resolutions);
750 const param_cod* cdp = cod->get_coc(comp_num);
751 if (dfs && cdp && cdp->is_dfs_defined()) {
752 const param_dfs* d = dfs->get_dfs(cdp->get_dfs_index());
754 }
755 factor.x *= (ui32)cptr[comp_num].XRsiz;
756 factor.y *= (ui32)cptr[comp_num].YRsiz;
757 return factor;
758 }
759
762 {
763 assert(comp_num < get_num_components());
764
765 point factor = get_recon_downsampling(comp_num);
766 point r;
767 r.x = ojph_div_ceil(Xsiz, factor.x) - ojph_div_ceil(XOsiz, factor.x);
768 r.y = ojph_div_ceil(Ysiz, factor.y) - ojph_div_ceil(YOsiz, factor.y);
769 return r;
770 }
771
772
774 //
775 //
776 //
777 //
778 //
780
783 {
784 //marker size excluding header
785 Lcap = 8;
786
787 char buf[4];
788 bool result = true;
789
790 *(ui16*)buf = JP2K_MARKER::CAP;
791 *(ui16*)buf = swap_byte(*(ui16*)buf);
792 result &= file->write(&buf, 2) == 2;
793 *(ui16*)buf = swap_byte(Lcap);
794 result &= file->write(&buf, 2) == 2;
795 *(ui32*)buf = swap_byte(Pcap);
796 result &= file->write(&buf, 4) == 4;
797
798 *(ui16*)buf = swap_byte(Ccap[0]);
799 result &= file->write(&buf, 2) == 2;
800
801 return result;
802 }
803
806 {
807 if (file->read(&Lcap, 2) != 2)
808 OJPH_ERROR(0x00050061, "error reading CAP marker");
810 if (file->read(&Pcap, 4) != 4)
811 OJPH_ERROR(0x00050062, "error reading CAP marker");
813 ui32 count = population_count(Pcap);
814 if (Pcap & 0xFFFDFFFF)
815 OJPH_ERROR(0x00050063,
816 "error Pcap in CAP has options that are not supported");
817 if ((Pcap & 0x00020000) == 0)
818 OJPH_ERROR(0x00050064,
819 "error Pcap should have its 15th MSB set, Pcap^15. "
820 " This is not a JPH file");
821 for (ui32 i = 0; i < count; ++i)
822 if (file->read(Ccap+i, 2) != 2)
823 OJPH_ERROR(0x00050065, "error reading CAP marker");
824 if (Lcap != 6 + 2 * count)
825 OJPH_ERROR(0x00050066, "error in CAP marker length");
826 }
827
829 //
830 //
831 //
832 //
833 //
835
838 {
839 if (SPcod.wavelet_trans <= 1)
841 else {
842 assert(atk != NULL);
843 return atk->is_reversible();
844 }
845 }
846
849 {
850 assert(type == COD_MAIN);
851
852 //marker size excluding header
853 Lcod = 12;
854 Lcod = (ui16)(Lcod + (Scod & 1 ? 1 + SPcod.num_decomp : 0));
855
856 ui8 buf[4];
857 bool result = true;
858
859 *(ui16*)buf = JP2K_MARKER::COD;
860 *(ui16*)buf = swap_byte(*(ui16*)buf);
861 result &= file->write(&buf, 2) == 2;
862 *(ui16*)buf = swap_byte(Lcod);
863 result &= file->write(&buf, 2) == 2;
864 *(ui8*)buf = Scod;
865 result &= file->write(&buf, 1) == 1;
866 *(ui8*)buf = SGCod.prog_order;
867 result &= file->write(&buf, 1) == 1;
868 *(ui16*)buf = swap_byte(SGCod.num_layers);
869 result &= file->write(&buf, 2) == 2;
870 *(ui8*)buf = SGCod.mc_trans;
871 result &= file->write(&buf, 1) == 1;
872 buf[0] = SPcod.num_decomp;
873 buf[1] = SPcod.block_width;
874 buf[2] = SPcod.block_height;
875 buf[3] = SPcod.block_style;
876 result &= file->write(&buf, 4) == 4;
877 *(ui8*)buf = SPcod.wavelet_trans;
878 result &= file->write(&buf, 1) == 1;
879 if (Scod & 1)
880 for (int i = 0; i <= SPcod.num_decomp; ++i)
881 {
882 *(ui8*)buf = SPcod.precinct_size[i];
883 result &= file->write(&buf, 1) == 1;
884 }
885
886 return result;
887 }
888
891 {
892 assert(type == COD_MAIN);
893 bool result = true;
894 param_cod *p = this->next;
895 while (p)
896 {
897 if (p->comp_idx < num_comps)
898 result &= p->internal_write_coc(file, num_comps);
899 p = p->next;
900 }
901 return result;
902 }
903
906 {
907 assert(type == COC_MAIN);
908
909 //marker size excluding header
910 Lcod = num_comps < 257 ? 9 : 10;
911 Lcod = (ui16)(Lcod + (Scod & 1 ? 1 + SPcod.num_decomp : 0));
912
913 ui8 buf[4];
914 bool result = true;
915
916 *(ui16*)buf = JP2K_MARKER::COC;
917 *(ui16*)buf = swap_byte(*(ui16*)buf);
918 result &= file->write(&buf, 2) == 2;
919 *(ui16*)buf = swap_byte(Lcod);
920 result &= file->write(&buf, 2) == 2;
921 if (num_comps < 257)
922 {
923 *(ui8*)buf = (ui8)comp_idx;
924 result &= file->write(&buf, 1) == 1;
925 }
926 else
927 {
928 *(ui16*)buf = swap_byte(comp_idx);
929 result &= file->write(&buf, 2) == 2;
930 }
931 *(ui8*)buf = Scod;
932 result &= file->write(&buf, 1) == 1;
933 buf[0] = SPcod.num_decomp;
934 buf[1] = SPcod.block_width;
935 buf[2] = SPcod.block_height;
936 buf[3] = SPcod.block_style;
937 result &= file->write(&buf, 4) == 4;
938 *(ui8*)buf = SPcod.wavelet_trans;
939 result &= file->write(&buf, 1) == 1;
940 if (Scod & 1)
941 for (int i = 0; i <= SPcod.num_decomp; ++i)
942 {
943 *(ui8*)buf = SPcod.precinct_size[i];
944 result &= file->write(&buf, 1) == 1;
945 }
946
947 return result;
948 }
949
952 {
953 assert(type == COD_MAIN);
954
955 if (file->read(&Lcod, 2) != 2)
956 OJPH_ERROR(0x00050071, "error reading COD segment");
958 if (file->read(&Scod, 1) != 1)
959 OJPH_ERROR(0x00050072, "error reading COD segment");
960 if (file->read(&SGCod.prog_order, 1) != 1)
961 OJPH_ERROR(0x00050073, "error reading COD segment");
962 if (file->read(&SGCod.num_layers, 2) != 2)
963 { OJPH_ERROR(0x00050074, "error reading COD segment"); }
964 else
965 SGCod.num_layers = swap_byte(SGCod.num_layers);
966 if (file->read(&SGCod.mc_trans, 1) != 1)
967 OJPH_ERROR(0x00050075, "error reading COD segment");
968 if (file->read(&SPcod.num_decomp, 1) != 1)
969 OJPH_ERROR(0x00050076, "error reading COD segment");
970 if (file->read(&SPcod.block_width, 1) != 1)
971 OJPH_ERROR(0x00050077, "error reading COD segment");
972 if (file->read(&SPcod.block_height, 1) != 1)
973 OJPH_ERROR(0x00050078, "error reading COD segment");
974 if (file->read(&SPcod.block_style, 1) != 1)
975 OJPH_ERROR(0x00050079, "error reading COD segment");
976 if (file->read(&SPcod.wavelet_trans, 1) != 1)
977 OJPH_ERROR(0x0005007A, "error reading COD segment");
978
979 if (get_num_decompositions() > 32
980 || SPcod.block_width > 8
981 || SPcod.block_height > 8
982 || SPcod.block_width + SPcod.block_height > 8
983 || (SPcod.block_style & 0x40) != 0x40
984 || (SPcod.block_style & 0xB7) != 0x00)
985 OJPH_ERROR(0x0005007D, "wrong settings in a COD-SPcod parameter");
986 if ((SPcod.block_style & 0x40) != 0x40
987 || (SPcod.block_style & 0xB7) != 0x00)
988 OJPH_ERROR(0x0005007E, "unsupported settings in a COD-SPcod parameter");
989
990 ui8 num_decompositions = get_num_decompositions();
991 if (Scod & 1)
992 for (int i = 0; i <= num_decompositions; ++i)
993 if (file->read(&SPcod.precinct_size[i], 1) != 1)
994 OJPH_ERROR(0x0005007B, "error reading COD segment");
995 if (Lcod != 12 + ((Scod & 1) ? 1 + SPcod.num_decomp : 0))
996 OJPH_ERROR(0x0005007C, "error in COD segment length");
997 }
998
1000 void param_cod::read_coc(infile_base* file, ui32 num_comps,
1002 {
1003 assert(type == COC_MAIN);
1004 assert(top_cod != NULL);
1005
1006 this->SGCod = top_cod->SGCod;
1007 this->top_cod = top_cod;
1008 if (file->read(&Lcod, 2) != 2)
1009 OJPH_ERROR(0x00050121, "error reading COC segment");
1010 Lcod = swap_byte(Lcod);
1011 if (num_comps < 257) {
1012 ui8 t;
1013 if (file->read(&t, 1) != 1)
1014 OJPH_ERROR(0x00050122, "error reading COC segment");
1015 comp_idx = t;
1016 }
1017 else {
1018 if (file->read(&comp_idx, 2) != 2)
1019 OJPH_ERROR(0x00050123, "error reading COC segment");
1021 }
1022 if (file->read(&Scod, 1) != 1)
1023 OJPH_ERROR(0x00050124, "error reading COC segment");
1024 if (Scod & 0xF8)
1025 OJPH_WARN(0x00050011,
1026 "Unsupported options in Scoc field of the COC segment");
1027 if (file->read(&SPcod.num_decomp, 1) != 1)
1028 OJPH_ERROR(0x00050125, "error reading COC segment");
1029 if (file->read(&SPcod.block_width, 1) != 1)
1030 OJPH_ERROR(0x00050126, "error reading COC segment");
1031 if (file->read(&SPcod.block_height, 1) != 1)
1032 OJPH_ERROR(0x00050127, "error reading COC segment");
1033 if (file->read(&SPcod.block_style, 1) != 1)
1034 OJPH_ERROR(0x00050128, "error reading COC segment");
1035 if (file->read(&SPcod.wavelet_trans, 1) != 1)
1036 OJPH_ERROR(0x00050129, "error reading COC segment");
1037
1038 if (get_num_decompositions() > 32
1039 || SPcod.block_width > 8
1040 || SPcod.block_height > 8
1041 || SPcod.block_width + SPcod.block_height > 8
1042 || (SPcod.block_style & 0x40) != 0x40
1043 || (SPcod.block_style & 0xB7) != 0x00)
1044 OJPH_ERROR(0x0005012C, "wrong settings in a COC-SPcoc parameter");
1045 if ((SPcod.block_style & 0x40) != 0x40
1046 || (SPcod.block_style & 0xB7) != 0x00)
1047 OJPH_ERROR(0x0005012D, "unsupported settings in a COC-SPcoc parameter");
1048
1049 ui8 num_decompositions = get_num_decompositions();
1050 if (Scod & 1)
1051 for (int i = 0; i <= num_decompositions; ++i)
1052 if (file->read(&SPcod.precinct_size[i], 1) != 1)
1053 OJPH_ERROR(0x0005012A, "error reading COC segment");
1054 ui32 t = 9;
1055 t += num_comps < 257 ? 0 : 1;
1056 t += (Scod & 1) ? 1 + num_decompositions : 0;
1057 if (Lcod != t)
1058 OJPH_ERROR(0x0005012B, "error in COC segment length");
1059 }
1060
1063 {
1064 assert(type == COD_MAIN);
1065 this->atk = atk->get_atk(SPcod.wavelet_trans);
1066 if (this->atk == NULL)
1067 OJPH_ERROR(0x00050131, "A COD segment employs the DWT kernel "
1068 "atk = %d, but a corresponding ATK segment cannot be found.",
1069 SPcod.wavelet_trans);
1070 param_cod *p = next;
1071 while (p)
1072 {
1073 p->atk = atk->get_atk(p->SPcod.wavelet_trans);
1074 if (p->atk == NULL)
1075 OJPH_ERROR(0x00050132, "A COC segment employs the DWT kernel "
1076 "atk = %d, but a corresponding ATK segment cannot be found",
1077 SPcod.wavelet_trans);
1078 p = p->next;
1079 }
1080 }
1081
1084 {
1085 assert(this->type == COD_MAIN || this->top_cod->type == COD_MAIN);
1086 const param_cod *p, *q;
1087 if (this->type == COD_MAIN)
1088 q = p = this;
1089 else
1090 q = p = this->top_cod;
1091 while (p && p->comp_idx != comp_idx)
1092 p = p->next;
1093 return p ? p : q;
1094 }
1095
1098 {
1099 // cast object to constant
1100 const param_cod* const_p = const_cast<const param_cod*>(this);
1101 // call using the constant object, then cast to non-const
1102 return const_cast<param_cod*>(const_p->get_coc(comp_idx));
1103 }
1104
1107 {
1108 assert(type == COD_MAIN);
1109 param_cod *p = this;
1110 while (p->next != NULL)
1111 p = p->next;
1112 if (avail)
1113 {
1114 p->next = avail;
1115 avail = avail->next;
1116 p->next->init(this, (ui16)comp_idx);
1117 }
1118 else
1119 p->next = new param_cod(this, (ui16)comp_idx);
1120 return p->next;
1121 }
1122
1124 //
1125 //
1126 //
1127 //
1128 //
1130
1132 void param_qcd::check_validity(const param_siz& siz, const param_cod& cod)
1133 {
1134 ui32 num_comps = siz.get_num_components();
1136
1137 // first check that all the component captured by QCD have the same
1138 // bit_depth and signedness
1139 bool all_same = true;
1140 bool other_comps_exist = false;
1141 ui32 first_comp = 0xFFFF; // an impossible component
1142 {
1143 ui32 num_decompositions = 0;
1144 ui32 bit_depth = 0;
1145 bool is_signed = false;
1146 ui32 wavelet_kern = param_cod::DWT_IRV97;
1147
1148 for (ui32 c = 0; c < num_comps; ++c)
1149 {
1150 if (get_qcc(c) == this) // no qcc defined for component c
1151 {
1152 const param_cod *p = cod.get_coc(c);
1153 if (bit_depth == 0) // first component captured by QCD
1154 {
1155 num_decompositions = p->get_num_decompositions();
1156 bit_depth = siz.get_bit_depth(c);
1157 is_signed = siz.is_signed(c);
1158 wavelet_kern = p->get_wavelet_kern();
1159 first_comp = c;
1160 }
1161 else
1162 {
1163 all_same = all_same
1164 && (num_decompositions == p->get_num_decompositions())
1165 && (bit_depth == siz.get_bit_depth(c))
1166 && (is_signed == siz.is_signed(c))
1167 && (wavelet_kern == p->get_wavelet_kern());
1168 }
1169 }
1170 else
1171 other_comps_exist = true;
1172 }
1173 }
1174
1175 // configure QCD according COD
1176 ui32 qcd_num_decompositions;
1177 ui32 qcd_bit_depth;
1178 bool qcd_is_signed;
1179 ui32 qcd_wavelet_kern;
1180 {
1181 ui32 qcd_component = first_comp != 0xFFFF ? first_comp : 0;
1182 bool employing_color_transform = cod.is_employing_color_transform();
1183 qcd_num_decompositions = cod.get_num_decompositions();
1184 qcd_bit_depth = siz.get_bit_depth(qcd_component);
1185 qcd_is_signed = siz.is_signed(qcd_component);
1186 qcd_wavelet_kern = cod.get_wavelet_kern();
1187 this->num_subbands = 1 + 3 * qcd_num_decompositions;
1188 if (qcd_wavelet_kern == param_cod::DWT_REV53)
1189 set_rev_quant(qcd_num_decompositions, qcd_bit_depth,
1190 qcd_component < 3 ? employing_color_transform : false);
1191 else if (qcd_wavelet_kern == param_cod::DWT_IRV97)
1192 {
1193 if (this->base_delta == -1.0f)
1194 this->base_delta = 1.0f / (float)(1 << qcd_bit_depth);
1195 set_irrev_quant(qcd_num_decompositions);
1196 }
1197 else
1198 assert(0);
1199 }
1200
1201 // if not all the same and captured by QCD, then create QCC for them
1202 if (!all_same)
1203 {
1204 bool employing_color_transform = cod.is_employing_color_transform();
1205 for (ui32 c = 0; c < num_comps; ++c)
1206 {
1207 const param_cod *cp = cod.get_coc(c);
1208 if (qcd_num_decompositions == cp->get_num_decompositions()
1209 && qcd_bit_depth == siz.get_bit_depth(c)
1210 && qcd_is_signed == siz.is_signed(c)
1211 && qcd_wavelet_kern == cp->get_wavelet_kern())
1212 continue; // captured by QCD
1213
1214 // Does not match QCD, must have QCC
1215 param_qcd *qp = get_qcc(c);
1216 if (qp == this) // no QCC was defined, create QCC
1217 qp = this->add_qcc_object(c);
1218
1219 ui32 num_decompositions = cp->get_num_decompositions();
1220 qp->num_subbands = 1 + 3 * num_decompositions;
1221 ui32 bit_depth = siz.get_bit_depth(c);
1223 qp->set_rev_quant(num_decompositions, bit_depth,
1224 c < 3 ? employing_color_transform : false);
1225 else if (cp->get_wavelet_kern() == param_cod::DWT_IRV97)
1226 {
1227 if (qp->base_delta == -1.0f)
1228 qp->base_delta = 1.0f / (float)(1 << bit_depth);
1229 qp->set_irrev_quant(num_decompositions);
1230 }
1231 else
1232 assert(0);
1233 }
1234 }
1235 else if (other_comps_exist) // Some are captured by QCD
1236 {
1237 bool employing_color_transform = cod.is_employing_color_transform();
1238 for (ui32 c = 0; c < num_comps; ++c)
1239 {
1240 param_qcd *qp = get_qcc(c);
1241 if (qp == this) // if captured by QCD continue
1242 continue;
1243 const param_cod *cp = cod.get_coc(c);
1244 ui32 num_decompositions = cp->get_num_decompositions();
1245 qp->num_subbands = 1 + 3 * num_decompositions;
1246 ui32 bit_depth = siz.get_bit_depth(c);
1248 qp->set_rev_quant(num_decompositions, bit_depth,
1249 c < 3 ? employing_color_transform : false);
1250 else if (cp->get_wavelet_kern() == param_cod::DWT_IRV97)
1251 {
1252 if (qp->base_delta == -1.0f)
1253 qp->base_delta = 1.0f / (float)(1 << bit_depth);
1254 qp->set_irrev_quant(num_decompositions);
1255 }
1256 else
1257 assert(0);
1258 }
1259 }
1260 }
1261
1264 {
1265 assert(type == QCD_MAIN);
1267 if (p == NULL)
1269 p->set_delta(delta);
1270 }
1271
1273 void param_qcd::set_rev_quant(ui32 num_decomps, ui32 bit_depth,
1274 bool is_employing_color_transform)
1275 {
1276 ui32 B = bit_depth;
1277 B += is_employing_color_transform ? 1 : 0; //1 bit for RCT
1278 int s = 0;
1279 double bibo_l = bibo_gains::get_bibo_gain_l(num_decomps, true);
1280 ui32 X = (ui32) ceil(log(bibo_l * bibo_l) / M_LN2);
1281 SPqcd.u8[s++] = (ui8)(B + X);
1282 ui32 max_B_plus_X = (ui32)(B + X);
1283 for (ui32 d = num_decomps; d > 0; --d)
1284 {
1285 double bibo_l = bibo_gains::get_bibo_gain_l(d, true);
1286 double bibo_h = bibo_gains::get_bibo_gain_h(d - 1, true);
1287 X = (ui32) ceil(log(bibo_h * bibo_l) / M_LN2);
1288 SPqcd.u8[s++] = (ui8)(B + X);
1289 max_B_plus_X = ojph_max(max_B_plus_X, B + X);
1290 SPqcd.u8[s++] = (ui8)(B + X);
1291 max_B_plus_X = ojph_max(max_B_plus_X, B + X);
1292 X = (ui32) ceil(log(bibo_h * bibo_h) / M_LN2);
1293 SPqcd.u8[s++] = (ui8)(B + X);
1294 max_B_plus_X = ojph_max(max_B_plus_X, B + X);
1295 }
1296
1297 if (max_B_plus_X > 38)
1298 OJPH_ERROR(0x00050151, "The specified combination of bit_depth, "
1299 "colour transform, and type of wavelet transform requires more than "
1300 "38 bits; it requires %d bits. This is beyond what is allowed in "
1301 "the JPEG2000 image coding format.", max_B_plus_X);
1302
1303 int guard_bits = ojph_max(1, (si32)max_B_plus_X - 31);
1304 Sqcd = (ui8)(guard_bits << 5);
1305 s = 0;
1306 SPqcd.u8[s] = encode_SPqcd((ui8)(SPqcd.u8[s] - guard_bits));
1307 s++;
1308 for (ui32 d = num_decomps; d > 0; --d)
1309 {
1310 SPqcd.u8[s] = encode_SPqcd((ui8)(SPqcd.u8[s] - guard_bits));
1311 s++;
1312 SPqcd.u8[s] = encode_SPqcd((ui8)(SPqcd.u8[s] - guard_bits));
1313 s++;
1314 SPqcd.u8[s] = encode_SPqcd((ui8)(SPqcd.u8[s] - guard_bits));
1315 s++;
1316 }
1317 }
1318
1321 {
1322 int guard_bits = 1;
1323 Sqcd = (ui8)((guard_bits<<5)|0x2);//one guard bit, scalar quantization
1324 int s = 0;
1325 float gain_l = sqrt_energy_gains::get_gain_l(num_decomps, false);
1326 float delta_b = base_delta / (gain_l * gain_l);
1327 int exp = 0, mantissa;
1328 while (delta_b < 1.0f)
1329 { exp++; delta_b *= 2.0f; }
1330 //with rounding, there is a risk of becoming equal to 1<<12
1331 // but that should not happen in reality
1332 mantissa = (int)round(delta_b * (float)(1<<11)) - (1<<11);
1333 mantissa = mantissa < (1<<11) ? mantissa : 0x7FF;
1334 SPqcd.u16[s++] = (ui16)((exp << 11) | mantissa);
1335 for (ui32 d = num_decomps; d > 0; --d)
1336 {
1337 float gain_l = sqrt_energy_gains::get_gain_l(d, false);
1338 float gain_h = sqrt_energy_gains::get_gain_h(d - 1, false);
1339
1340 delta_b = base_delta / (gain_l * gain_h);
1341
1342 int exp = 0, mantissa;
1343 while (delta_b < 1.0f)
1344 { exp++; delta_b *= 2.0f; }
1345 mantissa = (int)round(delta_b * (float)(1<<11)) - (1<<11);
1346 mantissa = mantissa < (1<<11) ? mantissa : 0x7FF;
1347 SPqcd.u16[s++] = (ui16)((exp << 11) | mantissa);
1348 SPqcd.u16[s++] = (ui16)((exp << 11) | mantissa);
1349
1350 delta_b = base_delta / (gain_h * gain_h);
1351
1352 exp = 0;
1353 while (delta_b < 1)
1354 { exp++; delta_b *= 2.0f; }
1355 mantissa = (int)round(delta_b * (float)(1<<11)) - (1<<11);
1356 mantissa = mantissa < (1<<11) ? mantissa : 0x7FF;
1357 SPqcd.u16[s++] = (ui16)((exp << 11) | mantissa);
1358 }
1359 }
1360
1363 {
1364 ui32 B = 0;
1365
1366 const param_qcd *p = this;
1367 while (p)
1368 {
1369 //this can be written better, but it is only executed once
1370 // this assumes a bi-directional wavelet (conventional DWT)
1371 ui32 num_decomps = (p->num_subbands - 1) / 3;
1372
1373 int irrev = p->Sqcd & 0x1F;
1374 if (irrev == 0) //reversible
1375 for (ui32 i = 0; i < p->num_subbands; ++i) {
1376 ui32 t = p->decode_SPqcd(p->SPqcd.u8[i]);
1377 t += p->get_num_guard_bits() - 1u;
1378 B = ojph_max(B, t);
1379 }
1380 else if (irrev == 2) //scalar expounded
1381 for (ui32 i = 0; i < p->num_subbands; ++i)
1382 {
1383 ui32 nb = num_decomps - (i ? (i - 1) / 3 : 0); //decompsition level
1384 ui32 t = (p->SPqcd.u16[i] >> 11) + p->get_num_guard_bits() - nb;
1385 B = ojph_max(B, t);
1386 }
1387 else
1388 assert(0);
1389
1390 p = p->next;
1391 }
1392
1393 return B;
1394 }
1395
1398 ui32 num_decompositions,
1399 ui32 resolution, ui32 subband) const
1400 {
1401 float arr[] = { 1.0f, 2.0f, 2.0f, 4.0f };
1402 assert((Sqcd & 0x1F) == 2);
1403
1404 ui32 idx;
1405 if (dfs != NULL && dfs->exists())
1406 idx = dfs->get_subband_idx(num_decompositions, resolution, subband);
1407 else
1408 idx = resolution ? (resolution - 1) * 3 + subband : 0;
1409 if (idx >= num_subbands) {
1410 OJPH_INFO(0x00050101, "Trying to access quantization step size for "
1411 "subband %d when the QCD/QCC marker segment specifies "
1412 "quantization step sizes for %d subbands only. To continue "
1413 "decoding, we are using the step size for subband %d, which can "
1414 "produce incorrect results",
1415 idx + 1, num_subbands, num_subbands - 1);
1416 idx = num_subbands - 1;
1417 }
1418 int eps = SPqcd.u16[idx] >> 11;
1419 float mantissa;
1420 mantissa = (float)((SPqcd.u16[idx] & 0x7FF) | 0x800) * arr[subband];
1421 mantissa /= (float)(1 << 11);
1422 mantissa /= (float)(1u << eps);
1423 return mantissa;
1424 }
1425
1428 {
1429 ui32 comp_idx = cod->get_comp_idx();
1430 ui32 precision = 0;
1431 const param_cod *main =
1433 if (main->is_employing_color_transform() && comp_idx < 3)
1434 {
1435 for (ui32 i = 0; i < 3; ++i) {
1436 const param_qcd* p = this->get_qcc(i);
1437 precision = ojph_max(precision, p->get_largest_Kmax());
1438 }
1439 }
1440 else {
1441 precision = get_largest_Kmax();
1442 }
1443 // ``precision'' now holds the largest K_max, which excludes the sign
1444 // bit.
1445 // + 1 for the sign bit
1446 // + 1 because my block decoder/encoder does not supports up to 30
1447 // bits (not 31), so we bump it by one more bit.
1448 return precision + 1 + 1;
1449 }
1450
1453 {
1454 return (Sqcd >> 5);
1455 }
1456
1458 ui32 param_qcd::get_Kmax(const param_dfs* dfs, ui32 num_decompositions,
1459 ui32 resolution, ui32 subband) const
1460 {
1461 ui32 idx;
1462 if (dfs != NULL && dfs->exists())
1463 idx = dfs->get_subband_idx(num_decompositions, resolution, subband);
1464 else
1465 idx = resolution ? (resolution - 1) * 3 + subband : 0;
1466 if (idx >= num_subbands) {
1467 OJPH_INFO(0x00050111, "Trying to access quantization step size for "
1468 "subband %d when the QCD/QCC marker segment specifies "
1469 "quantization step sizes for %d subbands only. To continue "
1470 "decoding, we are using the step size for subband %d, which can "
1471 "produce incorrect results",
1472 idx + 1, num_subbands, num_subbands - 1);
1473 idx = num_subbands - 1;
1474 }
1475
1476 int irrev = Sqcd & 0x1F;
1477 ui32 num_bits = 0;
1478 if (irrev == 0) // reversible; this is (10.22) from the J2K book
1479 {
1480 num_bits = decode_SPqcd(SPqcd.u8[idx]);
1481 num_bits = num_bits == 0 ? 0 : num_bits - 1;
1482 }
1483 else if (irrev == 1)
1484 assert(0);
1485 else if (irrev == 2) //scalar expounded
1486 num_bits = (SPqcd.u16[idx] >> 11) - 1;
1487 else
1488 assert(0);
1489
1490 return num_bits + get_num_guard_bits();
1491 }
1492
1495 {
1496 int irrev = Sqcd & 0x1F;
1497 ui32 num_bits = 0;
1498 if (irrev == 0) // reversible; this is (10.22) from the J2K book
1499 {
1500 for (ui32 i = 0; i < num_subbands; ++i) {
1501 ui32 t = decode_SPqcd(SPqcd.u8[i]);
1502 num_bits = ojph_max(num_bits, t == 0 ? 0 : t - 1);
1503 }
1504 }
1505 else if (irrev == 1)
1506 assert(0);
1507 else if (irrev == 2) //scalar expounded
1508 {
1509 for (ui32 i = 0; i < num_subbands; ++i) {
1510 ui32 t = (SPqcd.u16[i] >> 11) - 1;
1511 num_bits = ojph_max(num_bits, t);
1512 }
1513 }
1514 else
1515 assert(0);
1516
1517 return num_bits + get_num_guard_bits();
1518 }
1519
1522 {
1523 int irrev = Sqcd & 0x1F;
1524
1525 //marker size excluding header
1526 Lqcd = 3;
1527 if (irrev == 0)
1528 Lqcd = (ui16)(Lqcd + num_subbands);
1529 else if (irrev == 2)
1530 Lqcd = (ui16)(Lqcd + 2 * num_subbands);
1531 else
1532 assert(0);
1533
1534 char buf[4];
1535 bool result = true;
1536
1537 *(ui16*)buf = JP2K_MARKER::QCD;
1538 *(ui16*)buf = swap_byte(*(ui16*)buf);
1539 result &= file->write(&buf, 2) == 2;
1540 *(ui16*)buf = swap_byte(Lqcd);
1541 result &= file->write(&buf, 2) == 2;
1542 *(ui8*)buf = Sqcd;
1543 result &= file->write(&buf, 1) == 1;
1544
1545 if (irrev == 0)
1546 for (ui32 i = 0; i < num_subbands; ++i)
1547 {
1548 *(ui8*)buf = SPqcd.u8[i];
1549 result &= file->write(&buf, 1) == 1;
1550 }
1551 else if (irrev == 2)
1552 for (ui32 i = 0; i < num_subbands; ++i)
1553 {
1554 *(ui16*)buf = swap_byte(SPqcd.u16[i]);
1555 result &= file->write(&buf, 2) == 2;
1556 }
1557 else
1558 assert(0);
1559
1560 return result;
1561 }
1562
1565 {
1566 assert(type == QCD_MAIN);
1567 bool result = true;
1568 param_qcd *p = this->next;
1569 while (p)
1570 {
1571 if (p->enabled)
1572 result &= p->internal_write_qcc(file, num_comps);
1573 p = p->next;
1574 }
1575 return result;
1576 }
1577
1580 {
1581 int irrev = Sqcd & 0x1F;
1582
1583 //marker size excluding header
1584 Lqcd = (ui16)(4 + (num_comps < 257 ? 0 : 1));
1585 if (irrev == 0)
1586 Lqcd = (ui16)(Lqcd + num_subbands);
1587 else if (irrev == 2)
1588 Lqcd = (ui16)(Lqcd + 2 * num_subbands);
1589 else
1590 assert(0);
1591
1592 char buf[4];
1593 bool result = true;
1594
1595 *(ui16*)buf = JP2K_MARKER::QCC;
1596 *(ui16*)buf = swap_byte(*(ui16*)buf);
1597 result &= file->write(&buf, 2) == 2;
1598 *(ui16*)buf = swap_byte(Lqcd);
1599 result &= file->write(&buf, 2) == 2;
1600 if (num_comps < 257)
1601 {
1602 *(ui8*)buf = (ui8)comp_idx;
1603 result &= file->write(&buf, 1) == 1;
1604 }
1605 else
1606 {
1607 *(ui16*)buf = swap_byte(comp_idx);
1608 result &= file->write(&buf, 2) == 2;
1609 }
1610 *(ui8*)buf = Sqcd;
1611 result &= file->write(&buf, 1) == 1;
1612 if (irrev == 0)
1613 for (ui32 i = 0; i < num_subbands; ++i)
1614 {
1615 *(ui8*)buf = SPqcd.u8[i];
1616 result &= file->write(&buf, 1) == 1;
1617 }
1618 else if (irrev == 2)
1619 for (ui32 i = 0; i < num_subbands; ++i)
1620 {
1621 *(ui16*)buf = swap_byte(SPqcd.u16[i]);
1622 result &= file->write(&buf, 2) == 2;
1623 }
1624 else
1625 assert(0);
1626
1627 return result;
1628 }
1629
1632 {
1633 assert(type == QCD_MAIN && comp_idx == OJPH_QCD_DEFAULT);
1634 param_qcd *p = this->next;
1635 while (p)
1636 {
1637 assert(p->type == QCC_MAIN);
1638 p->enabled = p->comp_idx < num_comps;
1639 p = p->next;
1640 }
1641 }
1642
1645 {
1646 if (file->read(&Lqcd, 2) != 2)
1647 OJPH_ERROR(0x00050081, "error reading QCD marker");
1648 Lqcd = swap_byte(Lqcd);
1649 if (file->read(&Sqcd, 1) != 1)
1650 OJPH_ERROR(0x00050082, "error reading QCD marker");
1651 if ((Sqcd & 0x1F) == 0)
1652 {
1653 num_subbands = (Lqcd - 3);
1654 if (num_subbands > 97 || Lqcd != 3 + num_subbands)
1655 OJPH_ERROR(0x00050083, "wrong Lqcd value of %d in QCD marker", Lqcd);
1656 for (ui32 i = 0; i < num_subbands; ++i)
1657 if (file->read(&SPqcd.u8[i], 1) != 1)
1658 OJPH_ERROR(0x00050084, "error reading QCD marker");
1659 }
1660 else if ((Sqcd & 0x1F) == 1)
1661 {
1662 num_subbands = 0;
1663 OJPH_ERROR(0x00050089,
1664 "Scalar derived quantization is not supported yet in QCD marker");
1665 if (Lqcd != 5)
1666 OJPH_ERROR(0x00050085, "wrong Lqcd value in QCD marker");
1667 }
1668 else if ((Sqcd & 0x1F) == 2)
1669 {
1670 num_subbands = (Lqcd - 3) / 2;
1671 if (num_subbands > 97 || Lqcd != 3 + 2 * num_subbands)
1672 OJPH_ERROR(0x00050086, "wrong Lqcd value of %d in QCD marker", Lqcd);
1673 for (ui32 i = 0; i < num_subbands; ++i)
1674 {
1675 if (file->read(&SPqcd.u16[i], 2) != 2)
1676 OJPH_ERROR(0x00050087, "error reading QCD marker");
1677 SPqcd.u16[i] = swap_byte(SPqcd.u16[i]);
1678 }
1679 }
1680 else
1681 OJPH_ERROR(0x00050088, "wrong Sqcd value in QCD marker");
1682 }
1683
1685 void param_qcd::read_qcc(infile_base *file, ui32 num_comps)
1686 {
1687 if (file->read(&Lqcd, 2) != 2)
1688 OJPH_ERROR(0x000500A1, "error reading QCC marker");
1689 Lqcd = swap_byte(Lqcd);
1690 if (num_comps < 257)
1691 {
1692 ui8 v;
1693 if (file->read(&v, 1) != 1)
1694 OJPH_ERROR(0x000500A2, "error reading QCC marker");
1695 comp_idx = v;
1696 }
1697 else
1698 {
1699 if (file->read(&comp_idx, 2) != 2)
1700 OJPH_ERROR(0x000500A3, "error reading QCC marker");
1702 }
1703 if (file->read(&Sqcd, 1) != 1)
1704 OJPH_ERROR(0x000500A4, "error reading QCC marker");
1705 ui32 offset = num_comps < 257 ? 4 : 5;
1706 if ((Sqcd & 0x1F) == 0)
1707 {
1708 num_subbands = (Lqcd - offset);
1709 if (num_subbands > 97 || Lqcd != offset + num_subbands)
1710 OJPH_ERROR(0x000500A5, "wrong Lqcd value of %d in QCC marker", Lqcd);
1711 for (ui32 i = 0; i < num_subbands; ++i)
1712 if (file->read(&SPqcd.u8[i], 1) != 1)
1713 OJPH_ERROR(0x000500A6, "error reading QCC marker");
1714 }
1715 else if ((Sqcd & 0x1F) == 1)
1716 {
1717 num_subbands = 0;
1718 OJPH_ERROR(0x000500AB,
1719 "Scalar derived quantization is not supported yet in QCC marker");
1720 if (Lqcd != offset)
1721 OJPH_ERROR(0x000500A7, "wrong Lqcc value in QCC marker");
1722 }
1723 else if ((Sqcd & 0x1F) == 2)
1724 {
1725 num_subbands = (Lqcd - offset) / 2;
1726 if (num_subbands > 97 || Lqcd != offset + 2 * num_subbands)
1727 OJPH_ERROR(0x000500A8, "wrong Lqcc value of %d in QCC marker", Lqcd);
1728 for (ui32 i = 0; i < num_subbands; ++i)
1729 {
1730 if (file->read(&SPqcd.u16[i], 2) != 2)
1731 OJPH_ERROR(0x000500A9, "error reading QCC marker");
1732 SPqcd.u16[i] = swap_byte(SPqcd.u16[i]);
1733 }
1734 }
1735 else
1736 OJPH_ERROR(0x000500AA, "wrong Sqcc value in QCC marker");
1737 }
1738
1741 {
1742 // cast object to constant
1743 const param_qcd* const_p = const_cast<const param_qcd*>(this);
1744 // call using the constant object, then cast to non-const
1745 return const_cast<param_qcd*>(const_p->get_qcc(comp_idx));
1746 }
1747
1750 {
1751 assert(this->type == QCD_MAIN || this->top_qcd->type == QCD_MAIN);
1752 const param_qcd *p, *q;
1753 if (this->type == QCD_MAIN)
1754 q = p = this;
1755 else
1756 q = p = this->top_qcd;
1757 while (p && p->comp_idx != comp_idx)
1758 p = p->next;
1759 return p ? p : q;
1760 }
1761
1764 {
1765 assert(type == QCD_MAIN);
1766 param_qcd *p = this;
1767 while (p->next != NULL)
1768 p = p->next;
1769 if (avail)
1770 {
1771 p->next = avail;
1772 avail = avail->next;
1773 p->next->init(this, (ui16)comp_idx);
1774 }
1775 else
1776 p->next = new param_qcd(this, (ui16)comp_idx);
1777 return p->next;
1778 }
1779
1781 //
1782 //
1783 //
1784 //
1785 //
1787
1790 {
1791 if (is_any_enabled() == false)
1792 return;
1793
1794 if (this->enabled && this->Tnlt == nonlinearity::OJPH_NLT_NO_NLT)
1795 this->enabled = false;
1796
1797 if (this->enabled &&
1798 this->Tnlt == nonlinearity::OJPH_NLT_BINARY_COMPLEMENT_NLT)
1799 {
1800 bool all_same = true;
1801 ui32 num_comps = siz.get_num_components();
1802
1803 // first stage; find out if all components captured by the default
1804 // entry (ALL_COMPS) has the same bit_depth/signedness,
1805 // while doing this, set the BDnlt for components not captured by the
1806 // default entry (ALL_COMPS)
1807 ui32 bit_depth = 0; // unknown yet
1808 bool is_signed = false; // unknown yet
1809 for (ui32 c = 0; c < num_comps; ++c)
1810 { // captured by ALL_COMPS
1811 param_nlt* p = get_nlt_object(c);
1812 if (p == NULL || !p->enabled)
1813 {
1814 if (bit_depth != 0)
1815 {
1816 // we have seen an undefined component previously
1817 all_same = all_same && (bit_depth == siz.get_bit_depth(c));
1818 all_same = all_same && (is_signed == siz.is_signed(c));
1819 }
1820 else
1821 {
1822 // this is the first component which has not type 3 nlt definition
1823 bit_depth = siz.get_bit_depth(c);
1824 is_signed = siz.is_signed(c);
1825 }
1826 }
1827 else
1828 { // can be type 0 or type 3
1829 p->BDnlt = (ui8)(siz.get_bit_depth(c) - 1);
1830 p->BDnlt = (ui8)(p->BDnlt | (siz.is_signed(c) ? 0x80 : 0));
1831 }
1832 }
1833
1834 if (all_same && bit_depth != 0)
1835 { // all the same, and some components are captured by ALL_COMPS
1836 this->BDnlt = (ui8)(bit_depth - 1);
1837 this->BDnlt = (ui8)(this->BDnlt | (is_signed ? 0x80 : 0));
1838 }
1839 else if (!all_same)
1840 { // have different settings or no component is captured by ALL_COMPS
1841 this->enabled = false;
1842 for (ui32 c = 0; c < num_comps; ++c)
1843 {
1844 param_nlt* p = get_nlt_object(c);
1845 if (p == NULL || !p->enabled)
1846 { // captured by ALL_COMPS
1847 if (p == NULL)
1848 p = add_object(c);
1849 p->enabled = true;
1850 p->Tnlt = nonlinearity::OJPH_NLT_BINARY_COMPLEMENT_NLT;
1851 p->BDnlt = (ui8)(siz.get_bit_depth(c) - 1);
1852 p->BDnlt = (ui8)(p->BDnlt | (siz.is_signed(c) ? 0x80 : 0));
1853 }
1854 }
1855 }
1856 }
1857 else {
1858 // fill NLT segment markers with correct information
1859 ui32 num_comps = siz.get_num_components();
1860 for (ui32 c = 0; c < num_comps; ++c)
1861 { // captured by ALL_COMPS
1862 param_nlt* p = get_nlt_object(c);
1863 if (p != NULL && p->enabled)
1864 { // can be type 0 or type 3
1865 p->BDnlt = (ui8)(siz.get_bit_depth(c) - 1);
1866 p->BDnlt = (ui8)(p->BDnlt | (siz.is_signed(c) ? 0x80 : 0));
1867 }
1868 }
1869 }
1870
1872
1873 if (is_any_enabled() == true)
1875 }
1876
1879 {
1880 if (nl_type != ojph::param_nlt::OJPH_NLT_NO_NLT &&
1882 OJPH_ERROR(0x00050171, "Nonliearities other than type 0 "
1883 "(No Nonlinearity) or type 3 (Binary Binary Complement to Sign "
1884 "Magnitude Conversion) are not supported yet");
1885 param_nlt* p = get_nlt_object(comp_num);
1886 if (p == NULL)
1887 p = add_object(comp_num);
1888 p->Tnlt = nl_type;
1889 p->enabled = true;
1890 }
1891
1893 bool
1895 bool& is_signed, ui8& nl_type) const
1896 {
1897 assert(Cnlt == special_comp_num::ALL_COMPS);
1898 const param_nlt* p = get_nlt_object(comp_num);
1899 p = (p && p->enabled) ? p : this;
1900 if (p->enabled)
1901 {
1902 bit_depth = (ui8)((p->BDnlt & 0x7F) + 1);
1903 bit_depth = bit_depth <= 38 ? bit_depth : 38;
1904 is_signed = (p->BDnlt & 0x80) == 0x80;
1905 nl_type = (nonlinearity)p->Tnlt;
1906 return true;
1907 }
1908 return false;
1909 }
1910
1913 {
1914 if (is_any_enabled() == false)
1915 return true;
1916
1917 char buf[2];
1918 bool result = true;
1919 const param_nlt* p = this;
1920 while (p)
1921 {
1922 if (p->enabled)
1923 {
1924 *(ui16*)buf = JP2K_MARKER::NLT;
1925 *(ui16*)buf = swap_byte(*(ui16*)buf);
1926 result &= file->write(&buf, 2) == 2;
1927 *(ui16*)buf = swap_byte(p->Lnlt);
1928 result &= file->write(&buf, 2) == 2;
1929 *(ui16*)buf = swap_byte(p->Cnlt);
1930 result &= file->write(&buf, 2) == 2;
1931 result &= file->write(&p->BDnlt, 1) == 1;
1932 result &= file->write(&p->Tnlt, 1) == 1;
1933 }
1934 p = p->next;
1935 }
1936 return result;
1937 }
1938
1941 {
1942 ui8 buf[6];
1943
1944 if (file->read(buf, 6) != 6)
1945 OJPH_ERROR(0x00050141, "error reading NLT marker segment");
1946
1947 ui16 length = swap_byte(*(ui16*)buf);
1948 if (length != 6 || (buf[5] != 3 && buf[5] != 0)) // wrong length or type
1949 OJPH_ERROR(0x00050142, "Unsupported NLT type %d\n", buf[5]);
1950
1951 ui16 comp = swap_byte(*(ui16*)(buf + 2));
1952 param_nlt* p = get_nlt_object(comp);
1953 if (p == NULL)
1954 p = add_object(comp);
1955 p->enabled = true;
1956 p->Cnlt = comp;
1957 p->BDnlt = buf[4];
1958 p->Tnlt = buf[5];
1959 }
1960
1963 {
1964 // cast object to constant
1965 const param_nlt* const_p = const_cast<const param_nlt*>(this);
1966 // call using the constant object, then cast to non-const
1967 return const_cast<param_nlt*>(const_p->get_nlt_object(comp_num));
1968 }
1969
1972 {
1973 const param_nlt* p = this;
1974 while (p && p->Cnlt != comp_num)
1975 p = p->next;
1976 return p;
1977 }
1978
1981 {
1982 assert(comp_num != special_comp_num::ALL_COMPS);
1983 assert(Cnlt == special_comp_num::ALL_COMPS);
1984 param_nlt* p = this;
1985 while (p->next != NULL) {
1986 assert(p->Cnlt != comp_num);
1987 p = p->next;
1988 }
1989 if (avail)
1990 {
1991 p->next = avail;
1992 avail = avail->next;
1993 p->next->init();
1994 }
1995 else
1996 p->next = new param_nlt;
1997 p = p->next;
1998 p->Cnlt = (ui16)comp_num;
1999 return p;
2000 }
2001
2004 {
2005 // check if any field is enabled
2006 const param_nlt* p = this;
2007 while (p && p->enabled == false)
2008 p = p->next;
2009 return (p != NULL);
2010 }
2011
2014 {
2015 param_nlt* p = this->next;
2016 while (p) {
2017 if (p->enabled == true && p->Cnlt >= num_comps) {
2018 p->enabled = false;
2019 OJPH_INFO(0x00050161, "The NLT marker segment for the "
2020 "non-existing component %d has been removed.", p->Cnlt);
2021 }
2022 p = p->next;
2023 }
2024 }
2025
2026
2028 //
2029 //
2030 //
2031 //
2032 //
2034
2036 bool param_sot::write(outfile_base *file, ui32 payload_len)
2037 {
2038 char buf[4];
2039 bool result = true;
2040
2041 this->Psot = payload_len + 14; //inc. SOT marker, field & SOD
2042
2043 *(ui16*)buf = JP2K_MARKER::SOT;
2044 *(ui16*)buf = swap_byte(*(ui16*)buf);
2045 result &= file->write(&buf, 2) == 2;
2046 *(ui16*)buf = swap_byte(Lsot);
2047 result &= file->write(&buf, 2) == 2;
2048 *(ui16*)buf = swap_byte(Isot);
2049 result &= file->write(&buf, 2) == 2;
2050 *(ui32*)buf = swap_byte(Psot);
2051 result &= file->write(&buf, 4) == 4;
2052 result &= file->write(&TPsot, 1) == 1;
2053 result &= file->write(&TNsot, 1) == 1;
2054
2055 return result;
2056 }
2057
2059 bool param_sot::write(outfile_base *file, ui32 payload_len,
2060 ui8 TPsot, ui8 TNsot)
2061 {
2062 char buf[4];
2063 bool result = true;
2064
2065 *(ui16*)buf = JP2K_MARKER::SOT;
2066 *(ui16*)buf = swap_byte(*(ui16*)buf);
2067 result &= file->write(&buf, 2) == 2;
2068 *(ui16*)buf = swap_byte(Lsot);
2069 result &= file->write(&buf, 2) == 2;
2070 *(ui16*)buf = swap_byte(Isot);
2071 result &= file->write(&buf, 2) == 2;
2072 *(ui32*)buf = swap_byte(payload_len + 14);
2073 result &= file->write(&buf, 4) == 4;
2074 result &= file->write(&TPsot, 1) == 1;
2075 result &= file->write(&TNsot, 1) == 1;
2076
2077 return result;
2078 }
2079
2081 bool param_sot::read(infile_base *file, bool resilient)
2082 {
2083 if (resilient)
2084 {
2085 if (file->read(&Lsot, 2) != 2)
2086 {
2087 OJPH_INFO(0x00050091, "error reading SOT marker");
2088 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2089 return false;
2090 }
2091 Lsot = swap_byte(Lsot);
2092 if (Lsot != 10)
2093 {
2094 OJPH_INFO(0x00050092, "error in SOT length");
2095 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2096 return false;
2097 }
2098 if (file->read(&Isot, 2) != 2)
2099 {
2100 OJPH_INFO(0x00050093, "error reading tile index");
2101 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2102 return false;
2103 }
2104 Isot = swap_byte(Isot);
2105 if (Isot == 0xFFFF)
2106 {
2107 OJPH_INFO(0x00050094, "tile index in SOT marker cannot be 0xFFFF");
2108 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2109 return false;
2110 }
2111 if (file->read(&Psot, 4) != 4)
2112 {
2113 OJPH_INFO(0x00050095, "error reading SOT marker");
2114 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2115 return false;
2116 }
2117 Psot = swap_byte(Psot);
2118 if (file->read(&TPsot, 1) != 1)
2119 {
2120 OJPH_INFO(0x00050096, "error reading SOT marker");
2121 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2122 return false;
2123 }
2124 if (file->read(&TNsot, 1) != 1)
2125 {
2126 OJPH_INFO(0x00050097, "error reading SOT marker");
2127 Lsot = 0; Isot = 0; Psot = 0; TPsot = 0; TNsot = 0;
2128 return false;
2129 }
2130 }
2131 else
2132 {
2133 if (file->read(&Lsot, 2) != 2)
2134 OJPH_ERROR(0x00050091, "error reading SOT marker");
2135 Lsot = swap_byte(Lsot);
2136 if (Lsot != 10)
2137 OJPH_ERROR(0x00050092, "error in SOT length");
2138 if (file->read(&Isot, 2) != 2)
2139 OJPH_ERROR(0x00050093, "error reading SOT tile index");
2140 Isot = swap_byte(Isot);
2141 if (Isot == 0xFFFF)
2142 OJPH_ERROR(0x00050094, "tile index in SOT marker cannot be 0xFFFF");
2143 if (file->read(&Psot, 4) != 4)
2144 OJPH_ERROR(0x00050095, "error reading SOT marker");
2145 Psot = swap_byte(Psot);
2146 if (file->read(&TPsot, 1) != 1)
2147 OJPH_ERROR(0x00050096, "error reading SOT marker");
2148 if (file->read(&TNsot, 1) != 1)
2149 OJPH_ERROR(0x00050097, "error reading SOT marker");
2150 }
2151 return true;
2152 }
2153
2155 //
2156 //
2157 //
2158 //
2159 //
2161
2164 {
2165 if (4 + 6 * num_pairs > 65535)
2166 OJPH_ERROR(0x000500B1, "Trying to allocate more than 65535 bytes for "
2167 "a TLM marker; this can be resolved by having more than "
2168 "one TLM marker, but the code does not support this. "
2169 "In any case, this limit means that we have 10922 "
2170 "tileparts or more, which is a huge number.");
2171 this->num_pairs = num_pairs;
2172 pairs = store;
2173 Ltlm = (ui16)(4 + 6 * num_pairs);
2174 Ztlm = 0;
2175 Stlm = 0x60;
2176 }
2177
2180 {
2181 assert(next_pair_index < num_pairs);
2182 pairs[next_pair_index].Ttlm = Ttlm;
2183 pairs[next_pair_index].Ptlm = Ptlm + 14;
2185 }
2186
2189 {
2190 assert(next_pair_index == num_pairs);
2191 char buf[4];
2192 bool result = true;
2193
2194 *(ui16*)buf = JP2K_MARKER::TLM;
2195 *(ui16*)buf = swap_byte(*(ui16*)buf);
2196 result &= file->write(&buf, 2) == 2;
2197 *(ui16*)buf = swap_byte(Ltlm);
2198 result &= file->write(&buf, 2) == 2;
2199 result &= file->write(&Ztlm, 1) == 1;
2200 result &= file->write(&Stlm, 1) == 1;
2201 for (ui32 i = 0; i < num_pairs; ++i)
2202 {
2203 *(ui16*)buf = swap_byte(pairs[i].Ttlm);
2204 result &= file->write(&buf, 2) == 2;
2205 *(ui32*)buf = swap_byte(pairs[i].Ptlm);
2206 result &= file->write(&buf, 4) == 4;
2207 }
2208 return result;
2209 }
2210
2212 //
2213 //
2214 //
2215 //
2216 //
2218
2220 const param_dfs* param_dfs::get_dfs(int index) const
2221 {
2222 const param_dfs* p = this;
2223 while (p && p->Sdfs != index)
2224 p = p->next;
2225 return p;
2226 }
2227
2230 {
2231 decomp_level = ojph_min(decomp_level, Ids);
2232 ui32 d = decomp_level - 1; // decomp_level starts from 1
2233 ui32 idx = d >> 2; // complete bytes
2234 ui32 bits = d & 0x3; // bit within the bytes
2235 ui32 val = (Ddfs[idx] >> (6 - 2 * bits)) & 0x3;
2236 return (dfs_dwt_type)val;
2237 }
2238
2241 ui32 subband) const
2242 {
2243 assert((resolution == 0 && subband == 0) ||
2244 (resolution > 0 && subband > 0 && subband < 4));
2245
2246 ui32 ns[4] = { 0, 3, 1, 1 };
2247
2248 ui32 idx = 0;
2249 if (resolution > 0)
2250 {
2251 idx = 0;
2252 ui32 i = 1;
2253 for (; i < resolution; ++i)
2254 idx += ns[get_dwt_type(num_decompositions - i + 1)];
2255 dfs_dwt_type t = get_dwt_type(num_decompositions - i + 1);
2256 idx += subband;
2257 if (t == VERT_DWT && subband == 2)
2258 --idx;
2259 }
2260
2261 return idx;
2262 }
2263
2265 point param_dfs::get_res_downsamp(ui32 skipped_resolutions) const
2266 {
2267 point factor(1, 1);
2268 ui32 decomp_level = 1;
2269 while (skipped_resolutions > 0)
2270 {
2271 param_dfs::dfs_dwt_type type = get_dwt_type(decomp_level);
2272 if (type == BIDIR_DWT)
2273 { factor.x *= 2; factor.y *= 2; }
2274 else if (type == HORZ_DWT)
2275 factor.x *= 2;
2276 else if (type == VERT_DWT)
2277 factor.y *= 2;
2278
2279 ++decomp_level;
2280 --skipped_resolutions;
2281 }
2282 return factor;
2283 }
2284
2287 {
2288 if (Ldfs != 0) { // this param_dfs is used
2289 param_dfs* p = this;
2290 while (p->next != NULL)
2291 p = p->next;
2292 if (avail)
2293 {
2294 p->next = avail;
2295 avail = avail->next;
2296 p->next->init();
2297 }
2298 else
2299 p->next = new param_dfs;
2300 p = p->next;
2301 return p->read(file);
2302 }
2303
2304 if (file->read(&Ldfs, 2) != 2)
2305 OJPH_ERROR(0x000500D1, "error reading DFS-Ldfs parameter");
2306 Ldfs = swap_byte(Ldfs);
2307 if (file->read(&Sdfs, 2) != 2)
2308 OJPH_ERROR(0x000500D2, "error reading DFS-Sdfs parameter");
2309 Sdfs = swap_byte(Sdfs);
2310 if (Sdfs > 15)
2311 OJPH_ERROR(0x000500D3, "The DFS-Sdfs parameter is %d, which is "
2312 "larger than the permissible 15", Sdfs);
2313 ui8 t, l_Ids = 0;
2314 if (file->read(&l_Ids, 1) != 1)
2315 OJPH_ERROR(0x000500D4, "error reading DFS-Ids parameter");
2316 constexpr int max_Ddfs = sizeof(Ddfs) * 4;
2317 if (l_Ids > max_Ddfs)
2318 OJPH_INFO(0x000500D5, "The DFS-Ids parameter is %d; while this is "
2319 "valid, the number is unnessarily large -- you do not need more "
2320 "than %d. Please contact me regarding this issue.",
2321 l_Ids, max_Ddfs);
2322 Ids = l_Ids < max_Ddfs ? l_Ids : max_Ddfs;
2323 for (int i = 0; i < Ids; i += 4)
2324 if (file->read(&Ddfs[i / 4], 1) != 1)
2325 OJPH_ERROR(0x000500D6, "error reading DFS-Ddfs parameters");
2326 for (int i = Ids; i < l_Ids; i += 4)
2327 if (file->read(&t, 1) != 1)
2328 OJPH_ERROR(0x000500D7, "error reading DFS-Ddfs parameters");
2329 return true;
2330 }
2331
2333 //
2334 //
2335 //
2336 //
2337 //
2339
2342 {
2343 assert(top_atk == NULL);
2344
2345 if (Latk == 0)
2346 {
2347 // This atk object is not used, initialize it to either 0 (irv97)
2348 // or 1 (rev53), and use it. If index is not 0 nor 1, then index
2349 // must have been read from file previously, otherwise it is an
2350 // error.
2351 if (index == 0) { this->init_irv97(); return this; }
2352 else if (index == 1) { this->init_rev53(); return this; }
2353 }
2354
2355 param_atk* p = this;
2356 while (p && p->get_index() != index)
2357 p = p->next;
2358
2359 if (p == NULL && (index == 0 || index == 1))
2360 {
2361 // The index was not found, add an atk object only if the index is
2362 // either 0 or 1
2363 p = add_object();
2364 if (index == 0)
2365 p->init_irv97();
2366 else if (index == 1)
2367 p->init_rev53();
2368 }
2369
2370 return p;
2371 }
2372
2374 bool param_atk::read_coefficient(infile_base *file, float &K, si32& bytes)
2375 {
2376 int coeff_type = get_coeff_type();
2377 if (coeff_type == 0) { // 8bit
2378 ui8 v;
2379 if (file->read(&v, 1) != 1) return false;
2380 bytes -= 1;
2381 K = v;
2382 }
2383 else if (coeff_type == 1) { // 16bit
2384 ui16 v;
2385 if (file->read(&v, 2) != 2) return false;
2386 bytes -= 2;
2387 K = swap_byte(v);
2388 }
2389 else if (coeff_type == 2) { // float
2390 union {
2391 float f;
2392 ui32 i;
2393 } v;
2394 if (file->read(&v.i, 4) != 4) return false;
2395 bytes -= 4;
2396 v.i = swap_byte(v.i);
2397 K = v.f;
2398 }
2399 else if (coeff_type == 3) { // double
2400 union {
2401 double d;
2402 ui64 i;
2403 } v;
2404 if (file->read(&v.i, 8) != 8) return false;
2405 bytes -= 8;
2406 v.i = swap_byte(v.i);
2407 K = (float)v.d;
2408 }
2409 else if (coeff_type == 4) { // 128 bit float
2410 ui64 v, v1;
2411 if (file->read(&v, 8) != 8) return false;
2412 bytes -= 8;
2413 if (file->read(&v1, 8) != 8) return false; // v1 not needed
2414 bytes -= 8;
2415 v = swap_byte(v);
2416
2417 union {
2418 float f;
2419 ui32 i;
2420 } s;
2421 // convert the MSB of 128b float to 32b float
2422 // 32b float has 1 sign bit, 8 exponent (offset 127), 23 mantissa
2423 // 128b float has 1 sign bit, 15 exponent (offset 16383), 112 mantissa
2424 si32 e = (si32)((v >> 48) & 0x7FFF); // exponent
2425 e -= 16383;
2426 e += 127;
2427 e = e & 0xFF; // removes MSBs if negative
2428 e <<= 23; // move bits to their location
2429 s.i = 0;
2430 s.i |= ((ui32)(v >> 32) & 0x80000000); // copy sign bit
2431 s.i |= (ui32)e; // copy exponent
2432 s.i |= (ui32)((v >> 25) & 0x007FFFFF); // copy 23 mantissa
2433 K = s.f;
2434 }
2435 return true;
2436 }
2437
2438
2441 {
2442 int coeff_type = get_coeff_type();
2443 if (coeff_type == 0) {
2444 si8 v;
2445 if (file->read(&v, 1) != 1) return false;
2446 bytes -= 1;
2447 K = v;
2448 }
2449 else if (coeff_type == 1) {
2450 si16 v;
2451 if (file->read(&v, 2) != 2) return false;
2452 bytes -= 2;
2453 K = (si16)swap_byte((ui16)v);
2454 }
2455 else
2456 return false;
2457 return true;
2458 }
2459
2462 {
2463 if (Latk != 0) // this param_atk is used
2464 return add_object()->read(file);
2465
2466 if (file->read(&Latk, 2) != 2)
2467 OJPH_ERROR(0x000500E1, "error reading ATK-Latk parameter");
2468 Latk = swap_byte(Latk);
2469 si32 bytes = Latk - 2;
2470 ojph::ui16 temp_Satk;
2471 if (file->read(&temp_Satk, 2) != 2)
2472 OJPH_ERROR(0x000500E2, "error reading ATK-Satk parameter");
2473 bytes -= 2;
2474 temp_Satk = swap_byte(temp_Satk);
2475 int tmp_idx = temp_Satk & 0xFF;
2476 if ((top_atk && top_atk->get_atk(tmp_idx) != NULL)
2477 || tmp_idx == 0 || tmp_idx == 1)
2478 OJPH_ERROR(0x000500F3, "ATK-Satk parameter sets ATK marker index to "
2479 "the illegal value of %d. ATK-Satk should be in (2-255) and, I "
2480 "believe, must not be repeated; otherwise, it would be unclear "
2481 "what marker segment must be employed when an index is repeated.",
2482 tmp_idx);
2483 Satk = temp_Satk;
2484 if (is_m_init0() == false) // only even-indexed is supported
2485 OJPH_ERROR(0x000500E3, "ATK-Satk parameter sets m_init to 1, "
2486 "requiring odd-indexed subsequence in first reconstruction step, "
2487 "which is not supported yet.");
2488 if (is_whole_sample() == false) // ARB filter not supported
2489 OJPH_ERROR(0x000500E4, "ATK-Satk parameter specified ARB filter, "
2490 "which is not supported yet.");
2491 if (is_reversible() && get_coeff_type() >= 2) // reversible & float
2492 OJPH_ERROR(0x000500E5, "ATK-Satk parameter does not make sense. "
2493 "It employs floats with reversible filtering.");
2494 if (is_using_ws_extension() == false) // only sym. ext is supported
2495 OJPH_ERROR(0x000500E6, "ATK-Satk parameter requires constant "
2496 "boundary extension, which is not supported yet.");
2497 if (is_reversible() == false)
2498 if (read_coefficient(file, Katk, bytes) == false)
2499 OJPH_ERROR(0x000500E7, "error reading ATK-Katk parameter");
2500 if (file->read(&Natk, 1) != 1)
2501 OJPH_ERROR(0x000500E8, "error reading ATK-Natk parameter");
2502 bytes -= 1;
2503 if (Natk > max_steps) {
2504 if (d != d_store) // was this allocated -- very unlikely
2505 delete[] d;
2506 d = new lifting_step[Natk];
2507 max_steps = Natk;
2508 }
2509
2510 if (is_reversible())
2511 {
2512 for (int s = 0; s < Natk; ++s)
2513 {
2514 if (file->read(&d[s].rev.Eatk, 1) != 1)
2515 OJPH_ERROR(0x000500E9, "error reading ATK-Eatk parameter");
2516 bytes -= 1;
2517 if (file->read(&d[s].rev.Batk, 2) != 2)
2518 OJPH_ERROR(0x000500EA, "error reading ATK-Batk parameter");
2519 bytes -= 2;
2520 d[s].rev.Batk = (si16)swap_byte((ui16)d[s].rev.Batk);
2521 ui8 LCatk;
2522 if (file->read(&LCatk, 1) != 1)
2523 OJPH_ERROR(0x000500EB, "error reading ATK-LCatk parameter");
2524 bytes -= 1;
2525 if (LCatk == 0)
2526 OJPH_ERROR(0x000500EC, "Encountered a ATK-LCatk value of zero; "
2527 "something is wrong.");
2528 if (LCatk > 1)
2529 OJPH_ERROR(0x000500ED, "ATK-LCatk value greater than 1; "
2530 "that is, a multitap filter is not supported");
2531 if (read_coefficient(file, d[s].rev.Aatk, bytes) == false)
2532 OJPH_ERROR(0x000500EE, "Error reding ATK-Aatk parameter");
2533 }
2534 }
2535 else
2536 {
2537 for (int s = 0; s < Natk; ++s)
2538 {
2539 ui8 LCatk;
2540 if (file->read(&LCatk, 1) != 1)
2541 OJPH_ERROR(0x000500EF, "error reading ATK-LCatk parameter");
2542 bytes -= 1;
2543 if (LCatk == 0)
2544 OJPH_ERROR(0x000500F0, "Encountered a ATK-LCatk value of zero; "
2545 "something is wrong.");
2546 if (LCatk > 1)
2547 OJPH_ERROR(0x000500F1, "ATK-LCatk value greater than 1; "
2548 "that is, a multitap filter is not supported.");
2549 if (read_coefficient(file, d[s].irv.Aatk, bytes) == false)
2550 OJPH_ERROR(0x000500F2, "Error reding ATK-Aatk parameter");
2551 }
2552 }
2553 if (bytes != 0)
2554 OJPH_ERROR(0x000500F3, "The length of an ATK marker segment "
2555 "(ATK-Latk) is not correct");
2556
2557 return true;
2558 }
2559
2562 {
2563 Satk = 0x4a00; // illegal because ATK = 0
2564 Katk = (float)1.230174104914001;
2565 Natk = 4;
2566 // next is (A-4) in T.801 second line
2567 Latk = (ui16)(5 + Natk + sizeof(float) * (1 + Natk));
2568 d[0].irv.Aatk = (float)0.443506852043971;
2569 d[1].irv.Aatk = (float)0.882911075530934;
2570 d[2].irv.Aatk = (float)-0.052980118572961;
2571 d[3].irv.Aatk = (float)-1.586134342059924;
2572 }
2573
2576 {
2577 Satk = 0x5801; // illegal because ATK = 1
2578 Natk = 2;
2579 // next is (A-4) in T.801 fourth line
2580 Latk = (ui16)(5 + 2 * Natk + sizeof(ui8) * (Natk + Natk));
2581 d[0].rev.Aatk = 1;
2582 d[0].rev.Batk = 2;
2583 d[0].rev.Eatk = 2;
2584 d[1].rev.Aatk = -1;
2585 d[1].rev.Batk = 1;
2586 d[1].rev.Eatk = 1;
2587 }
2588
2591 {
2592 assert(top_atk = NULL);
2593 param_atk *p = this;
2594 while (p->next != NULL)
2595 p = p->next;
2596 if (avail)
2597 {
2598 p->next = avail;
2599 avail = avail->next;
2600 }
2601 else
2602 p->next = new param_atk;
2603 p = p->next;
2604 p->init(this);
2605 return p;
2606 }
2607
2608 } // !local namespace
2609} // !ojph namespace
void set_string(const char *str)
void set_data(const char *data, ui16 len)
virtual size_t read(void *ptr, size_t size)=0
static const float gain_5x3_l[34]
static float get_bibo_gain_l(ui32 num_decomp, bool reversible)
static const float gain_5x3_h[34]
static float get_bibo_gain_h(ui32 num_decomp, bool reversible)
static const float gain_9x7_h[34]
static const float gain_9x7_l[34]
static const float gain_5x3_l[34]
static const float gain_5x3_h[34]
static float get_gain_l(ui32 num_decomp, bool reversible)
static const float gain_9x7_l[34]
static float get_gain_h(ui32 num_decomp, bool reversible)
static const float gain_9x7_h[34]
virtual size_t write(const void *ptr, size_t size)=0
bool is_reversible() const
void set_precinct_size(int num_levels, size *precinct_size)
size get_block_dims() const
void set_reversible(bool reversible)
size get_precinct_size(ui32 level_num) const
ui32 get_num_decompositions() const
local::param_cod * state
size get_log_block_dims() const
size get_log_precinct_size(ui32 level_num) const
void set_num_decomposition(ui32 num_decompositions)
bool get_block_vertical_causality() const
void set_block_dims(ui32 width, ui32 height)
size get_block_dims() const
int get_progression_order() const
bool is_using_color_transform() const
param_coc get_coc(ui32 component_idx)
void set_num_decomposition(ui32 num_decompositions)
ui32 get_num_decompositions() const
size get_log_block_dims() const
bool packets_may_use_sop() const
size get_precinct_size(ui32 level_num) const
const char * get_progression_order_as_string() const
void set_precinct_size(int num_levels, size *precinct_size)
bool packets_use_eph() const
local::param_cod * state
bool is_reversible() const
void set_progression_order(const char *name)
bool get_block_vertical_causality() const
void set_block_dims(ui32 width, ui32 height)
size get_log_precinct_size(ui32 level_num) const
int get_num_layers() const
void set_color_transform(bool color_transform)
void set_reversible(bool reversible)
@ OJPH_NLT_BINARY_COMPLEMENT_NLT
bool get_nonlinear_transform(ui32 comp_num, ui8 &bit_depth, bool &is_signed, ui8 &nl_type) const
get the nonlinearity type associated with comp_num, which should be one from enum nonlinearity
local::param_nlt * state
void set_nonlinear_transform(ui32 comp_num, ui8 nl_type)
enables or disables type 3 nonlinearity for a component or the default setting
void set_irrev_quant(float delta)
Set the irreversible quantization base delta.
local::param_qcd * state
void set_tile_size(size s)
point get_image_extent() const
void set_component(ui32 comp_num, const point &downsampling, ui32 bit_depth, bool is_signed)
void set_num_components(ui32 num_comps)
ui32 get_bit_depth(ui32 comp_num) const
void set_tile_offset(point offset)
point get_image_offset() const
local::param_siz * state
Definition ojph_params.h:99
void set_image_offset(point offset)
size get_tile_size() const
ui32 get_recon_height(ui32 comp_num) const
point get_downsampling(ui32 comp_num) const
void set_image_extent(point extent)
point get_tile_offset() const
ui32 get_recon_width(ui32 comp_num) const
bool is_signed(ui32 comp_num) const
ui32 get_num_components() const
static ui16 swap_byte(ui16 t)
const char OJPH_PO_STRING_PCRL[]
int8_t si8
Definition ojph_defs.h:51
uint64_t ui64
Definition ojph_defs.h:56
uint16_t ui16
Definition ojph_defs.h:52
static ui32 population_count(ui32 val)
Definition ojph_arch.h:152
const char OJPH_PO_STRING_RLCP[]
const char OJPH_PO_STRING_RPCL[]
const char OJPH_PO_STRING_CPRL[]
static ui32 count_leading_zeros(ui32 val)
Definition ojph_arch.h:173
int32_t si32
Definition ojph_defs.h:55
int16_t si16
Definition ojph_defs.h:53
uint32_t ui32
Definition ojph_defs.h:54
uint8_t ui8
Definition ojph_defs.h:50
const char OJPH_PO_STRING_LRCP[]
int main(int argc, char *argv[])
#define ojph_max(a, b)
Definition ojph_defs.h:73
#define ojph_div_ceil(a, b)
Definition ojph_defs.h:70
#define ojph_min(a, b)
Definition ojph_defs.h:76
#define OJPH_INFO(t,...)
MACROs to insert file and line number for info, warning, and error.
#define OJPH_ERROR(t,...)
#define OJPH_WARN(t,...)
bool read_coefficient(infile_base *file, float &K, si32 &bytes)
void init(param_atk *top_atk)
bool read(infile_base *file)
param_atk * get_atk(int index)
void read(infile_base *file)
bool write(outfile_base *file)
bool write(outfile_base *file)
const param_cod * get_coc(ui32 comp_idx) const
bool internal_write_coc(outfile_base *file, ui32 num_comps)
bool write_coc(outfile_base *file, ui32 num_comps)
bool is_employing_color_transform() const
void read(infile_base *file)
void init(param_cod *top_cod, ui16 comp_idx)
void read_coc(infile_base *file, ui32 num_comps, param_cod *top_cod)
void update_atk(param_atk *atk)
param_cod(param_cod *top_cod=NULL, ui16 comp_idx=OJPH_COD_DEFAULT)
param_cod * add_coc_object(ui32 comp_idx)
bool read(infile_base *file)
dfs_dwt_type get_dwt_type(ui32 decomp_level) const
point get_res_downsamp(ui32 skipped_resolutions) const
ui32 get_subband_idx(ui32 num_decompositions, ui32 resolution, ui32 subband) const
const param_dfs * get_dfs(int index) const
bool write(outfile_base *file) const
param_nlt * add_object(ui32 comp_num)
void trim_non_existing_components(ui32 num_comps)
void read(infile_base *file)
ojph::param_nlt::nonlinearity nonlinearity
bool get_nonlinear_transform(ui32 comp_num, ui8 &bit_depth, bool &is_signed, ui8 &nl_type) const
const param_nlt * get_nlt_object(ui32 comp_num) const
void check_validity(param_siz &siz)
void set_nonlinear_transform(ui32 comp_num, ui8 nl_type)
ui8 encode_SPqcd(ui8 v) const
bool write_qcc(outfile_base *file, ui32 num_comps)
void set_rev_quant(ui32 num_decomps, ui32 bit_depth, bool is_employing_color_transform)
void set_irrev_quant(ui32 num_decomps)
ui32 get_largest_Kmax() const
ui32 get_num_guard_bits() const
float get_irrev_delta(const param_dfs *dfs, ui32 num_decompositions, ui32 resolution, ui32 subband) const
void set_delta(float delta)
void read_qcc(infile_base *file, ui32 num_comps)
void check_validity(const param_siz &siz, const param_cod &cod)
bool write(outfile_base *file)
ui32 propose_precision(const param_cod *cod) const
void read(infile_base *file)
void init(param_qcd *top_qcd, ui16 comp_idx)
param_qcd * add_qcc_object(ui32 comp_idx)
union ojph::local::param_qcd::@230207226113216113147224005123273114227153127202 SPqcd
ui32 get_Kmax(const param_dfs *dfs, ui32 num_decompositions, ui32 resolution, ui32 subband) const
ui8 decode_SPqcd(ui8 v) const
param_qcd * get_qcc(ui32 comp_idx)
param_qcd(param_qcd *top_qcd=NULL, ui16 comp_idx=OJPH_QCD_DEFAULT)
void trim_non_existing_components(ui32 num_comps)
bool internal_write_qcc(outfile_base *file, ui32 num_comps)
ui32 get_bit_depth(ui32 comp_num) const
bool is_signed(ui32 comp_num) const
bool write(outfile_base *file)
point get_recon_downsampling(ui32 comp_num) const
void set_Rsiz_flag(ui16 flag)
point get_recon_size(ui32 comp_num) const
void read(infile_base *file)
void set_num_components(ui32 num_comps)
bool read(infile_base *file, bool resilient)
bool write(outfile_base *file, ui32 payload_len)
void set_next_pair(ui16 Ttlm, ui32 Ptlm)
bool write(outfile_base *file)
void init(ui32 num_pairs, Ttlm_Ptlm_pair *store)