1use crate::bands::{
2 SPREAD_NONE, SPREAD_NORMAL, compute_band_energies, denormalise_bands, haar1, log2amp,
3 normalise_bands, quant_all_bands, spreading_decision,
4};
5use crate::modes::{CeltMode, SPREAD_ICDF, TAPSET_ICDF, TF_SELECT_TABLE, TRIM_ICDF};
6use crate::quant_bands::{
7 quant_coarse_energy_advanced, quant_energy_finalise, quant_fine_energy, unquant_coarse_energy,
8 unquant_energy_finalise, unquant_fine_energy,
9};
10use crate::range_coder::RangeCoder;
11use crate::rate::{BITRES, clt_compute_allocation};
12
13#[cfg(target_arch = "aarch64")]
14use std::arch::aarch64::*;
15
16#[cfg(target_arch = "aarch64")]
17#[inline(always)]
18#[allow(unsafe_op_in_unsafe_fn)]
19unsafe fn sum_abs_neon(x: &[f32], n: usize) -> f32 {
20 let mut sum_vec = vdupq_n_f32(0.0);
21 let mut i = 0;
22
23 while i + 16 <= n {
24 let x0 = vld1q_f32(x.as_ptr().add(i));
25 let x1 = vld1q_f32(x.as_ptr().add(i + 4));
26 let x2 = vld1q_f32(x.as_ptr().add(i + 8));
27 let x3 = vld1q_f32(x.as_ptr().add(i + 12));
28
29 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x0), vdupq_n_f32(1.0));
30 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x1), vdupq_n_f32(1.0));
31 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x2), vdupq_n_f32(1.0));
32 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x3), vdupq_n_f32(1.0));
33
34 i += 16;
35 }
36
37 while i + 8 <= n {
38 let x0 = vld1q_f32(x.as_ptr().add(i));
39 let x1 = vld1q_f32(x.as_ptr().add(i + 4));
40 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x0), vdupq_n_f32(1.0));
41 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x1), vdupq_n_f32(1.0));
42 i += 8;
43 }
44
45 while i + 4 <= n {
46 let x0 = vld1q_f32(x.as_ptr().add(i));
47 sum_vec = vfmaq_f32(sum_vec, vabsq_f32(x0), vdupq_n_f32(1.0));
48 i += 4;
49 }
50
51 let mut sum = vaddvq_f32(sum_vec);
52
53 for j in i..n {
54 sum += x[j].abs();
55 }
56
57 sum
58}
59
60#[inline(always)]
61fn sum_abs(x: &[f32]) -> f32 {
62 #[cfg(target_arch = "x86_64")]
63 unsafe {
64 if std::arch::is_x86_feature_detected!("avx") {
65 return sum_abs_avx(x, x.len());
66 }
67 }
68 #[cfg(target_arch = "aarch64")]
69 unsafe {
70 sum_abs_neon(x, x.len())
71 }
72 #[cfg(not(target_arch = "aarch64"))]
73 {
74 x.iter().map(|&v| v.abs()).sum()
75 }
76}
77
78const MAX_FRAME_SIZE: usize = 2880;
79
80const DECODE_BUFFER_SIZE: usize = 3072;
81const PLC_LPC_ORDER: usize = 24;
83const PLC_PITCH_LAG_MAX: usize = 720;
84const PLC_PITCH_LAG_MIN: usize = 100;
85
86const INV_TABLE: [u8; 128] = [
87 255, 255, 156, 110, 86, 70, 59, 51, 45, 40, 37, 33, 31, 28, 26, 25, 23, 22, 21, 20, 19, 18, 17,
88 16, 16, 15, 15, 14, 13, 13, 12, 12, 12, 12, 11, 11, 11, 10, 10, 10, 9, 9, 9, 9, 9, 9, 8, 8, 8,
89 8, 8, 7, 7, 7, 7, 7, 7, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5,
90 5, 5, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 3, 3, 3, 3,
91 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 2,
92];
93
94const MAX_TRANSIENT_LEN: usize = 3000;
95
96#[derive(Debug, Clone, Copy)]
97pub struct AnalysisInfo {
98 pub valid: bool,
99 pub tonality: f32,
100 pub tonality_slope: f32,
101 pub noisiness: f32,
102 pub activity: f32,
103 pub music_prob: f32,
104 pub music_prob_min: f32,
105 pub music_prob_max: f32,
106 pub bandwidth: i32,
107 pub activity_probability: f32,
108 pub max_pitch_ratio: f32,
109 pub leak_boost: [u8; 19], }
111
112impl Default for AnalysisInfo {
113 fn default() -> Self {
114 Self {
115 valid: false,
116 tonality: 0.0,
117 tonality_slope: 0.0,
118 noisiness: 0.0,
119 activity: 0.0,
120 music_prob: 0.0,
121 music_prob_min: 0.0,
122 music_prob_max: 0.0,
123 bandwidth: 0,
124 activity_probability: 0.0,
125 max_pitch_ratio: 1.0,
126 leak_boost: [0; 19],
127 }
128 }
129}
130
131#[allow(clippy::too_many_arguments)]
132fn transient_analysis(
133 input: &[f32],
134 len: usize,
135 channels: usize,
136 tf_estimate: &mut f32,
137 tf_chan: &mut usize,
138 allow_weak_transients: bool,
139 weak_transient: &mut bool,
140 _tone_freq: f32,
141 toneishness: f32,
142 tmp: &mut [f32],
143 tmp2: &mut [f32],
144) -> bool {
145 let _prof = crate::prof::scope(crate::prof::Stage::CeltTransient);
146 let mut mask_metric = 0.0f32;
147 let mut forward_decay = 0.0625f32;
148
149 *weak_transient = false;
150 if allow_weak_transients {
151 forward_decay = 0.03125f32;
152 }
153
154 let len2 = len / 2;
155 debug_assert!(len <= MAX_TRANSIENT_LEN);
156
157 for c in 0..channels {
158 let mut mem0 = 0.0f32;
159 let mut mem1 = 0.0f32;
160
161 for i in 0..len {
162 let x = input[c * len + i];
163 let y = mem0 + x;
164 let mem00 = mem0;
165 mem0 = mem0 - x + 0.5 * mem1;
166 mem1 = x - mem00;
167 tmp[i] = y;
168 }
169
170 tmp[..12].fill(0.0);
171
172 let mut mean = 0.0f32;
173 mem0 = 0.0f32;
174 for i in 0..len2 {
175 let x2 = (tmp[2 * i] * tmp[2 * i] + tmp[2 * i + 1] * tmp[2 * i + 1]) / 16.0;
176 mean += x2 / 4096.0;
177 mem0 = x2 + (1.0 - forward_decay) * mem0;
178 tmp2[i] = forward_decay * mem0;
179 }
180
181 mem0 = 0.0f32;
182 let mut max_e = 0.0f32;
183 for i in (0..len2).rev() {
184 mem0 = tmp2[i] + 0.875 * mem0;
185 tmp2[i] = 0.125 * mem0;
186 if tmp2[i] > max_e {
187 max_e = tmp2[i];
188 }
189 }
190
191 mean = (mean * max_e * 0.5 * (len2 as f32)).sqrt();
192 let norm = (len2 as f32) / (1e-10 + mean);
193
194 let mut unmask = 0.0f32;
195 for i in (12..(len2 - 5)).step_by(4) {
196 let id = (64.0 * norm * (tmp2[i] + 1e-10)).floor() as i32;
197 let id = id.clamp(0, 127) as usize;
198 unmask += INV_TABLE[id] as f32;
199 }
200
201 unmask = 64.0 * unmask * 4.0 / (6.0 * (len2 as f32 - 17.0));
202 if unmask > mask_metric {
203 *tf_chan = c;
204 mask_metric = unmask;
205 }
206 }
207
208 let mut is_transient = mask_metric > 200.0;
209
210 if toneishness > 0.98 && _tone_freq < 0.026 {
211 is_transient = false;
212 mask_metric = 0.0;
213 }
214
215 *tf_estimate = (mask_metric - 150.0).clamp(0.0, 1.0);
216
217 is_transient
218}
219
220fn l1_metric(tmp: &[f32], n: usize, lm: i32, bias: f32) -> f32 {
221 #[cfg(target_arch = "x86_64")]
222 unsafe {
223 if n >= 16 && std::arch::is_x86_feature_detected!("avx") {
224 return l1_metric_avx(tmp, n, lm, bias);
225 }
226 }
227 #[cfg(target_arch = "aarch64")]
228 {
229 if n >= 16 {
230 return unsafe { l1_metric_neon(tmp, n, lm, bias) };
231 }
232 }
233
234 let mut l1 = 0.0f32;
235 for &tv in tmp[..n].iter() {
236 l1 += tv.abs();
237 }
238 l1 + (lm as f32) * bias * l1
239}
240
241#[cfg(target_arch = "x86_64")]
242#[target_feature(enable = "avx")]
243unsafe fn sum_abs_avx(x: &[f32], n: usize) -> f32 {
244 use std::arch::x86_64::*;
245
246 let mut sum0 = _mm256_setzero_ps();
247 let mut sum1 = _mm256_setzero_ps();
248 let mut i = 0usize;
249 let sign_mask = _mm256_set1_ps(-0.0);
250
251 while i + 16 <= n {
252 let v0 = _mm256_loadu_ps(x.as_ptr().add(i));
253 let v1 = _mm256_loadu_ps(x.as_ptr().add(i + 8));
254 sum0 = _mm256_add_ps(sum0, _mm256_andnot_ps(sign_mask, v0));
255 sum1 = _mm256_add_ps(sum1, _mm256_andnot_ps(sign_mask, v1));
256 i += 16;
257 }
258
259 while i + 8 <= n {
260 let v = _mm256_loadu_ps(x.as_ptr().add(i));
261 sum0 = _mm256_add_ps(sum0, _mm256_andnot_ps(sign_mask, v));
262 i += 8;
263 }
264
265 let sum = _mm256_add_ps(sum0, sum1);
266 let hi = _mm256_extractf128_ps(sum, 1);
267 let lo = _mm256_castps256_ps128(sum);
268 let s4 = _mm_add_ps(lo, hi);
269 let t1 = _mm_movehl_ps(s4, s4);
270 let s2 = _mm_add_ps(s4, t1);
271 let t2 = _mm_shuffle_ps(s2, s2, 0x55);
272 let mut out = _mm_cvtss_f32(_mm_add_ss(s2, t2));
273
274 for j in i..n {
275 out += x[j].abs();
276 }
277
278 out
279}
280
281#[cfg(target_arch = "x86_64")]
282#[target_feature(enable = "avx")]
283unsafe fn l1_metric_avx(tmp: &[f32], n: usize, lm: i32, bias: f32) -> f32 {
284 let l1 = sum_abs_avx(tmp, n);
285 l1 + (lm as f32) * bias * l1
286}
287
288#[cfg(target_arch = "aarch64")]
289#[target_feature(enable = "neon")]
290unsafe fn l1_metric_neon(tmp: &[f32], n: usize, lm: i32, bias: f32) -> f32 {
291 unsafe {
292 let mut sum4 = vdupq_n_f32(0.0);
293 let mut i = 0;
294
295 while i + 15 < n {
296 let v0 = vld1q_f32(tmp.as_ptr().add(i));
297 let v1 = vld1q_f32(tmp.as_ptr().add(i + 4));
298 let v2 = vld1q_f32(tmp.as_ptr().add(i + 8));
299 let v3 = vld1q_f32(tmp.as_ptr().add(i + 12));
300
301 sum4 = vaddq_f32(sum4, vabsq_f32(v0));
302 sum4 = vaddq_f32(sum4, vabsq_f32(v1));
303 sum4 = vaddq_f32(sum4, vabsq_f32(v2));
304 sum4 = vaddq_f32(sum4, vabsq_f32(v3));
305
306 i += 16;
307 }
308
309 while i + 3 < n {
310 let v = vld1q_f32(tmp.as_ptr().add(i));
311 sum4 = vaddq_f32(sum4, vabsq_f32(v));
312 i += 4;
313 }
314
315 let sum2 = vpaddq_f32(sum4, sum4);
316 let sum1 = vpaddq_f32(sum2, sum2);
317 let mut l1 = vgetq_lane_f32(sum1, 0);
318
319 while i < n {
320 l1 += tmp[i].abs();
321 i += 1;
322 }
323
324 l1 + (lm as f32) * bias * l1
325 }
326}
327
328const MAX_NB_EBANDS: usize = 21;
329
330const MAX_TF_TMP: usize = 176;
331
332#[allow(clippy::too_many_arguments)]
333fn tf_analysis(
334 mode: &CeltMode,
335 len: usize,
336 is_transient: bool,
337 tf_res: &mut [i32],
338 lambda: i32,
339 x: &[f32],
340 n0: usize,
341 lm: i32,
342 tf_estimate: f32,
343 tf_chan: usize,
344 importance: &[f32],
345) -> i32 {
346 let _prof = crate::prof::scope(crate::prof::Stage::CeltTf);
347 debug_assert!(len <= MAX_NB_EBANDS);
348 let mut metric = [0i32; MAX_NB_EBANDS];
349 let mut tmp = [0.0f32; MAX_TF_TMP];
350 let mut tmp_1 = [0.0f32; MAX_TF_TMP];
351
352 let bias = 0.04 * (-0.25f32).max(0.5 - tf_estimate);
353
354 for (i, metric_i) in metric[..len].iter_mut().enumerate() {
355 let n = ((mode.e_bands[i + 1] - mode.e_bands[i]) as usize) << lm;
356 let narrow = (mode.e_bands[i + 1] - mode.e_bands[i]) == 1;
357 let offset = tf_chan * n0 + ((mode.e_bands[i] as usize) << lm);
358 tmp[..n].copy_from_slice(&x[offset..offset + n]);
359
360 let mut l1 = l1_metric(&tmp[..n], n, if is_transient { lm } else { 0 }, bias);
361 let mut best_l1 = l1;
362 let mut best_level = 0;
363
364 if is_transient && !narrow {
365 tmp_1[..n].copy_from_slice(&tmp[..n]);
366 haar1(&mut tmp_1[..n], n >> lm, 1 << lm);
367 l1 = l1_metric(&tmp_1[..n], n, lm + 1, bias);
368 if l1 < best_l1 {
369 best_l1 = l1;
370 best_level = -1;
371 }
372 }
373
374 for k in 0..(lm + if is_transient || narrow { 0 } else { 1 }) {
375 let b = if is_transient { lm - k - 1 } else { k + 1 };
376
377 haar1(&mut tmp[..n], n >> k, 1 << k);
378 l1 = l1_metric(&tmp[..n], n, b, bias);
379
380 if l1 < best_l1 {
381 best_l1 = l1;
382 best_level = k + 1;
383 }
384 }
385
386 if is_transient {
387 *metric_i = 2 * best_level;
388 } else {
389 *metric_i = -2 * best_level;
390 }
391
392 if narrow && (*metric_i == 0 || *metric_i == -2 * lm) {
393 *metric_i -= 1;
394 }
395 }
396
397 let mut tf_select = 0;
398 let mut selcost = [0.0f32; 2];
399
400 for sel in 0..2 {
401 let mut cost0 = importance[0]
402 * ((metric[0]
403 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * sel] as i32)
404 as f32)
405 .abs();
406 let mut cost1 = importance[0]
407 * ((metric[0]
408 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * sel + 1]
409 as i32) as f32)
410 .abs()
411 + (if is_transient { 0.0 } else { lambda as f32 });
412
413 for i in 1..len {
414 let curr0 = cost0.min(cost1 + lambda as f32);
415 let curr1 = (cost0 + lambda as f32).min(cost1);
416 cost0 = curr0
417 + importance[i]
418 * ((metric[i]
419 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * sel]
420 as i32) as f32)
421 .abs();
422 cost1 = curr1
423 + importance[i]
424 * ((metric[i]
425 - 2 * TF_SELECT_TABLE[lm as usize]
426 [4 * (is_transient as usize) + 2 * sel + 1]
427 as i32) as f32)
428 .abs();
429 }
430 selcost[sel] = cost0.min(cost1);
431 }
432
433 if selcost[1] < selcost[0] && is_transient {
435 tf_select = 1;
436 }
437
438 let mut cost0 = importance[0]
439 * ((metric[0]
440 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * tf_select] as i32)
441 as f32)
442 .abs();
443 let mut cost1 = importance[0]
444 * ((metric[0]
445 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * tf_select + 1]
446 as i32) as f32)
447 .abs()
448 + (if is_transient { 0.0 } else { lambda as f32 });
449
450 tf_res[0] = if cost0 < cost1 { 0 } else { 1 };
451
452 for i in 1..len {
453 let curr0 = cost0.min(cost1 + lambda as f32);
454 let curr1 = (cost0 + lambda as f32).min(cost1);
455 cost0 = curr0
456 + importance[i]
457 * ((metric[i]
458 - 2 * TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 * tf_select]
459 as i32) as f32)
460 .abs();
461 cost1 = curr1
462 + importance[i]
463 * ((metric[i]
464 - 2 * TF_SELECT_TABLE[lm as usize]
465 [4 * (is_transient as usize) + 2 * tf_select + 1]
466 as i32) as f32)
467 .abs();
468 tf_res[i] = if cost0 < cost1 { 0 } else { 1 };
469 }
470
471 tf_select as i32
472}
473
474fn tf_encode(
475 start: usize,
476 end: usize,
477 is_transient: bool,
478 tf_res: &mut [i32],
479 lm: i32,
480 mut tf_select: i32,
481 rc: &mut RangeCoder,
482) -> i32 {
483 let mut curr = 0;
484 let mut tf_changed = 0;
485 let mut logp = if is_transient { 2 } else { 4 };
486 let mut budget = rc.storage as i32 * 8;
487 let mut tell = rc.tell();
488
489 let tf_select_rsv = if lm > 0 && tell + logp < budget { 1 } else { 0 };
490 budget -= tf_select_rsv;
491
492 for tf_res_i in tf_res[start..end].iter_mut() {
493 if tell + logp <= budget {
494 rc.encode_bit_logp(*tf_res_i ^ curr != 0, logp as u32);
495 tell = rc.tell();
496 curr = *tf_res_i;
497 tf_changed |= curr;
498 } else {
499 *tf_res_i = curr;
500 }
501 logp = if is_transient { 4 } else { 5 };
502 }
503
504 if tf_select_rsv != 0
505 && TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + (tf_changed as usize)]
506 != TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 + (tf_changed as usize)]
507 {
508 rc.encode_bit_logp(tf_select != 0, 1);
509 } else {
510 tf_select = 0;
511 }
512
513 for tf_res_i in tf_res[start..end].iter_mut() {
514 *tf_res_i = TF_SELECT_TABLE[lm as usize]
515 [4 * (is_transient as usize) + 2 * (tf_select as usize) + (*tf_res_i as usize)]
516 as i32;
517 }
518
519 tf_changed
520}
521
522fn tf_decode(
523 start: usize,
524 end: usize,
525 is_transient: bool,
526 tf_res: &mut [i32],
527 lm: i32,
528 rc: &mut RangeCoder,
529) {
530 let mut curr = 0;
531 let mut tf_changed = 0;
532 let mut logp = if is_transient { 2 } else { 4 };
533 let budget = rc.storage as i32 * 8;
534 let mut tell = rc.tell();
535
536 let tf_select_rsv = if lm > 0 && tell + logp < budget { 1 } else { 0 };
537 let budget = budget - tf_select_rsv;
538
539 for tf_res_i in tf_res[start..end].iter_mut() {
540 if tell + logp <= budget {
541 curr ^= if rc.decode_bit_logp(logp as u32) {
542 1
543 } else {
544 0
545 };
546 tell = rc.tell();
547 tf_changed |= curr;
548 }
549 *tf_res_i = curr;
550 logp = if is_transient { 4 } else { 5 };
551 }
552
553 let mut tf_select = 0;
554 let _budget = budget + tf_select_rsv;
555 if tf_select_rsv > 0
556 && TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + (tf_changed as usize)]
557 != TF_SELECT_TABLE[lm as usize][4 * (is_transient as usize) + 2 + (tf_changed as usize)]
558 {
559 tf_select = if rc.decode_bit_logp(1) { 1 } else { 0 };
560 }
561
562 for tf_res_i in tf_res[start..end].iter_mut() {
563 *tf_res_i = TF_SELECT_TABLE[lm as usize]
564 [4 * (is_transient as usize) + 2 * (tf_select as usize) + (*tf_res_i as usize)]
565 as i32;
566 }
567}
568
569fn stereo_analysis(m: &CeltMode, x: &[f32], lm: i32, n0: usize) -> bool {
570 let mut sum_lr = 1e-9f32;
571 let mut sum_ms = 1e-9f32;
572
573 for i in 0..13 {
574 let start = (m.e_bands[i] as usize) << lm;
575 let end = (m.e_bands[i + 1] as usize) << lm;
576 for j in start..end {
577 let l = x[j];
578 let r = x[n0 + j];
579 let m_val = l + r;
580 let s_val = l - r;
581 sum_lr += l.abs() + r.abs();
582 sum_ms += m_val.abs() + s_val.abs();
583 }
584 }
585
586 sum_ms *= std::f32::consts::FRAC_1_SQRT_2;
587 let mut thetas = 13;
588 if lm <= 1 {
589 thetas -= 8;
590 }
591
592 let left = (((m.e_bands[13] as usize) << (lm + 1)) + thetas) as f32 * sum_ms;
593 let right = ((m.e_bands[13] as usize) << (lm + 1)) as f32 * sum_lr;
594
595 left > right
596}
597
598const COMBFILTER_MINPERIOD: usize = 15;
599const COMBFILTER_MAXPERIOD: usize = 1024;
600
601const PREFILTER_GAINS: [[f32; 3]; 3] = [
602 [0.306_640_6, 0.217_041, 0.129_638_7],
603 [0.463_867_2, 0.268_066_4, 0.0],
604 [0.799_804_7, 0.100_097_7, 0.0],
605];
606
607#[allow(clippy::too_many_arguments)]
608fn comb_filter_const(
609 y: &mut [f32],
610 x: &[f32],
611 y_idx: usize,
612 x_idx: usize,
613 t: usize,
614 n: usize,
615 g10: f32,
616 g11: f32,
617 g12: f32,
618) {
619 #[cfg(target_arch = "aarch64")]
620 {
621 comb_filter_const_neon(y, x, y_idx, x_idx, t, n, g10, g11, g12);
622 }
623 #[cfg(any(target_arch = "x86", target_arch = "x86_64"))]
624 unsafe {
625 if std::arch::is_x86_feature_detected!("avx") {
626 comb_filter_const_avx(y, x, y_idx, x_idx, t, n, g10, g11, g12);
627 return;
628 }
629 }
630 #[cfg(all(target_arch = "x86_64", target_feature = "sse"))]
631 unsafe {
632 comb_filter_const_sse(y, x, y_idx, x_idx, t, n, g10, g11, g12);
633 #[allow(clippy::needless_return)]
634 return;
635 }
636 #[cfg(not(any(
637 target_arch = "aarch64",
638 all(target_arch = "x86_64", target_feature = "sse")
639 )))]
640 {
641 comb_filter_const_scalar(y, x, y_idx, x_idx, t, n, g10, g11, g12);
642 }
643}
644
645#[inline]
646#[allow(dead_code)]
647fn comb_filter_const_scalar(
648 y: &mut [f32],
649 x: &[f32],
650 y_idx: usize,
651 x_idx: usize,
652 t: usize,
653 n: usize,
654 g10: f32,
655 g11: f32,
656 g12: f32,
657) {
658 let mut x1;
659 let mut x2;
660 let mut x3;
661 let mut x4;
662 let mut x0;
663
664 x4 = x[x_idx - t - 2];
665 x3 = x[x_idx - t - 1];
666 x2 = x[x_idx - t];
667 x1 = x[x_idx - t + 1];
668
669 for i in 0..n {
670 x0 = x[x_idx + i - t + 2];
671 y[y_idx + i] = x[x_idx + i] + g10 * x2 + g11 * (x1 + x3) + g12 * (x0 + x4);
672 x4 = x3;
673 x3 = x2;
674 x2 = x1;
675 x1 = x0;
676 }
677}
678
679#[cfg(target_arch = "aarch64")]
680fn comb_filter_const_neon(
681 y: &mut [f32],
682 x: &[f32],
683 y_idx: usize,
684 x_idx: usize,
685 t: usize,
686 n: usize,
687 g10: f32,
688 g11: f32,
689 g12: f32,
690) {
691 unsafe { comb_filter_const_neon_impl(y, x, y_idx, x_idx, t, n, g10, g11, g12) }
692}
693
694#[cfg(target_arch = "aarch64")]
695#[inline(always)]
696#[allow(unsafe_op_in_unsafe_fn)]
697unsafe fn comb_filter_const_neon_impl(
698 y: &mut [f32],
699 x: &[f32],
700 y_idx: usize,
701 x_idx: usize,
702 t: usize,
703 n: usize,
704 g10: f32,
705 g11: f32,
706 g12: f32,
707) {
708 use std::arch::aarch64::*;
709
710 let g10v = vdupq_n_f32(g10);
711 let g11v = vdupq_n_f32(g11);
712 let g12v = vdupq_n_f32(g12);
713
714 let xbase = x.as_ptr().add(x_idx);
715 let ybase = y.as_mut_ptr().add(y_idx);
716
717 let mut x0v = vld1q_f32(xbase.sub(t + 2));
718
719 let mut i = 0;
720 while i + 4 <= n {
721 let x4v = vld1q_f32(xbase.add(i).sub(t - 2));
722
723 let x2v = vextq_f32(x0v, x4v, 2);
724
725 let x1v = vextq_f32(x0v, x4v, 1);
726
727 let x3v = vextq_f32(x0v, x4v, 3);
728
729 let xi = vld1q_f32(xbase.add(i));
730
731 let mut yi = xi;
732 yi = vfmaq_f32(yi, g10v, x2v);
733 yi = vfmaq_f32(yi, g11v, vaddq_f32(x1v, x3v));
734 yi = vfmaq_f32(yi, g12v, vaddq_f32(x4v, x0v));
735 vst1q_f32(ybase.add(i), yi);
736
737 x0v = x4v;
738 i += 4;
739 }
740
741 let x0v_arr: [f32; 4] = std::mem::transmute(x0v);
742 let mut sx4 = x0v_arr[0];
743 let mut sx3 = x0v_arr[1];
744 let mut sx2 = x0v_arr[2];
745 let mut sx1 = x0v_arr[3];
746
747 while i < n {
748 let sx0 = x[x_idx + i - t + 2];
749 y[y_idx + i] = x[x_idx + i] + g10 * sx2 + g11 * (sx1 + sx3) + g12 * (sx0 + sx4);
750 sx4 = sx3;
751 sx3 = sx2;
752 sx2 = sx1;
753 sx1 = sx0;
754 i += 1;
755 }
756}
757
758#[cfg(all(target_arch = "x86_64", target_feature = "sse"))]
759#[inline(always)]
760#[allow(unsafe_op_in_unsafe_fn)]
761unsafe fn comb_filter_const_sse(
762 y: &mut [f32],
763 x: &[f32],
764 y_idx: usize,
765 x_idx: usize,
766 t: usize,
767 n: usize,
768 g10: f32,
769 g11: f32,
770 g12: f32,
771) {
772 use std::arch::x86_64::*;
773
774 let g10v = _mm_set1_ps(g10);
775 let g11v = _mm_set1_ps(g11);
776 let g12v = _mm_set1_ps(g12);
777
778 let xbase = x.as_ptr().add(x_idx);
779 let ybase = y.as_mut_ptr().add(y_idx);
780 let mut x0v = _mm_loadu_ps(xbase.sub(t + 2));
781
782 let mut i = 0;
783 while i + 4 <= n {
784 let x4v = _mm_loadu_ps(xbase.add(i).sub(t - 2));
785
786 let x2v = _mm_shuffle_ps(x0v, x4v, 0x4e);
787
788 let x1v = _mm_shuffle_ps(x0v, x2v, 0x99);
789
790 let x3v = _mm_shuffle_ps(x2v, x4v, 0x99);
791
792 let xi = _mm_loadu_ps(xbase.add(i));
793
794 let mut yi = xi;
795 yi = _mm_add_ps(yi, _mm_mul_ps(g10v, x2v));
796 let yi2 = _mm_add_ps(
797 _mm_mul_ps(g11v, _mm_add_ps(x3v, x1v)),
798 _mm_mul_ps(g12v, _mm_add_ps(x4v, x0v)),
799 );
800 yi = _mm_add_ps(yi, yi2);
801 _mm_storeu_ps(ybase.add(i), yi);
802
803 x0v = x4v;
804 i += 4;
805 }
806
807 let x0v_arr: [f32; 4] = std::mem::transmute(x0v);
808 let mut sx4 = x0v_arr[0];
809 let mut sx3 = x0v_arr[1];
810 let mut sx2 = x0v_arr[2];
811 let mut sx1 = x0v_arr[3];
812
813 while i < n {
814 let sx0 = x[x_idx + i - t + 2];
815 y[y_idx + i] = x[x_idx + i] + g10 * sx2 + g11 * (sx1 + sx3) + g12 * (sx0 + sx4);
816 sx4 = sx3;
817 sx3 = sx2;
818 sx2 = sx1;
819 sx1 = sx0;
820 i += 1;
821 }
822}
823
824#[cfg(any(target_arch = "x86", target_arch = "x86_64"))]
825#[target_feature(enable = "avx,fma")]
826#[allow(unsafe_op_in_unsafe_fn)]
827unsafe fn comb_filter_const_avx(
828 y: &mut [f32],
829 x: &[f32],
830 y_idx: usize,
831 x_idx: usize,
832 t: usize,
833 n: usize,
834 g10: f32,
835 g11: f32,
836 g12: f32,
837) {
838 use std::arch::x86_64::*;
839
840 let g10v = _mm256_set1_ps(g10);
841 let g11v = _mm256_set1_ps(g11);
842 let g12v = _mm256_set1_ps(g12);
843
844 let xbase = x.as_ptr().add(x_idx);
845 let ybase = y.as_mut_ptr().add(y_idx);
846
847 let mut i = 0;
848
849 while i + 16 <= n {
850 let xi_a = _mm256_loadu_ps(xbase.add(i));
851 let x0_a = _mm256_loadu_ps(xbase.add(i).sub(t + 2));
852 let x4_a = _mm256_loadu_ps(xbase.add(i).sub(t - 2));
853
854 let x2_a = _mm256_loadu_ps(xbase.add(i).sub(t));
855 let x1x3_a = _mm256_add_ps(
856 _mm256_loadu_ps(xbase.add(i).sub(t + 1)),
857 _mm256_loadu_ps(xbase.add(i).sub(t - 1)),
858 );
859 let x0x4_a = _mm256_add_ps(x0_a, x4_a);
860
861 let mut yi_a = xi_a;
862 yi_a = _mm256_fmadd_ps(g10v, x2_a, yi_a);
863 yi_a = _mm256_fmadd_ps(g11v, x1x3_a, yi_a);
864 yi_a = _mm256_fmadd_ps(g12v, x0x4_a, yi_a);
865 _mm256_storeu_ps(ybase.add(i), yi_a);
866
867 let j = i + 8;
868 let xi_b = _mm256_loadu_ps(xbase.add(j));
869 let x0_b = _mm256_loadu_ps(xbase.add(j).sub(t + 2));
870 let x4_b = _mm256_loadu_ps(xbase.add(j).sub(t - 2));
871 let x2_b = _mm256_loadu_ps(xbase.add(j).sub(t));
872 let x1x3_b = _mm256_add_ps(
873 _mm256_loadu_ps(xbase.add(j).sub(t + 1)),
874 _mm256_loadu_ps(xbase.add(j).sub(t - 1)),
875 );
876 let x0x4_b = _mm256_add_ps(x0_b, x4_b);
877
878 let mut yi_b = xi_b;
879 yi_b = _mm256_fmadd_ps(g10v, x2_b, yi_b);
880 yi_b = _mm256_fmadd_ps(g11v, x1x3_b, yi_b);
881 yi_b = _mm256_fmadd_ps(g12v, x0x4_b, yi_b);
882 _mm256_storeu_ps(ybase.add(j), yi_b);
883
884 i += 16;
885 }
886
887 while i + 8 <= n {
888 let xi = _mm256_loadu_ps(xbase.add(i));
889 let x0 = _mm256_loadu_ps(xbase.add(i).sub(t + 2));
890 let x4 = _mm256_loadu_ps(xbase.add(i).sub(t - 2));
891 let x2 = _mm256_loadu_ps(xbase.add(i).sub(t));
892 let x1x3 = _mm256_add_ps(
893 _mm256_loadu_ps(xbase.add(i).sub(t + 1)),
894 _mm256_loadu_ps(xbase.add(i).sub(t - 1)),
895 );
896 let x0x4 = _mm256_add_ps(x0, x4);
897
898 let mut yi = xi;
899 yi = _mm256_fmadd_ps(g10v, x2, yi);
900 yi = _mm256_fmadd_ps(g11v, x1x3, yi);
901 yi = _mm256_fmadd_ps(g12v, x0x4, yi);
902 _mm256_storeu_ps(ybase.add(i), yi);
903
904 i += 8;
905 }
906
907 if i + 4 <= n {
908 comb_filter_const_sse_fma(y, x, y_idx + i, x_idx + i, t, n - i, g10, g11, g12);
909 return;
910 }
911
912 let mut sx4 = x[x_idx + i - t - 2];
913 let mut sx3 = x[x_idx + i - t - 1];
914 let mut sx2 = x[x_idx + i - t];
915 let mut sx1 = x[x_idx + i - t + 1];
916 while i < n {
917 let sx0 = x[x_idx + i - t + 2];
918 y[y_idx + i] = x[x_idx + i] + g10 * sx2 + g11 * (sx1 + sx3) + g12 * (sx0 + sx4);
919 sx4 = sx3;
920 sx3 = sx2;
921 sx2 = sx1;
922 sx1 = sx0;
923 i += 1;
924 }
925}
926
927#[cfg(any(target_arch = "x86", target_arch = "x86_64"))]
928#[target_feature(enable = "avx,fma")]
929#[allow(unsafe_op_in_unsafe_fn)]
930unsafe fn comb_filter_const_sse_fma(
931 y: &mut [f32],
932 x: &[f32],
933 y_idx: usize,
934 x_idx: usize,
935 t: usize,
936 n: usize,
937 g10: f32,
938 g11: f32,
939 g12: f32,
940) {
941 use std::arch::x86_64::*;
942
943 let g10v = _mm_set1_ps(g10);
944 let g11v = _mm_set1_ps(g11);
945 let g12v = _mm_set1_ps(g12);
946
947 let xbase = x.as_ptr().add(x_idx);
948 let ybase = y.as_mut_ptr().add(y_idx);
949 let mut x0v = _mm_loadu_ps(xbase.sub(t + 2));
950
951 let mut i = 0;
952 while i + 4 <= n {
953 let x4v = _mm_loadu_ps(xbase.add(i).sub(t - 2));
954 let x2v = _mm_shuffle_ps(x0v, x4v, 0x4e);
955 let x1v = _mm_shuffle_ps(x0v, x2v, 0x99);
956 let x3v = _mm_shuffle_ps(x2v, x4v, 0x99);
957 let xi = _mm_loadu_ps(xbase.add(i));
958
959 let mut yi = xi;
960 yi = _mm_fmadd_ps(g10v, x2v, yi);
961 yi = _mm_fmadd_ps(g11v, _mm_add_ps(x1v, x3v), yi);
962 yi = _mm_fmadd_ps(g12v, _mm_add_ps(x0v, x4v), yi);
963 _mm_storeu_ps(ybase.add(i), yi);
964
965 x0v = x4v;
966 i += 4;
967 }
968
969 let x0v_arr: [f32; 4] = std::mem::transmute(x0v);
970 let mut sx4 = x0v_arr[0];
971 let mut sx3 = x0v_arr[1];
972 let mut sx2 = x0v_arr[2];
973 let mut sx1 = x0v_arr[3];
974 while i < n {
975 let sx0 = x[x_idx + i - t + 2];
976 y[y_idx + i] = x[x_idx + i] + g10 * sx2 + g11 * (sx1 + sx3) + g12 * (sx0 + sx4);
977 sx4 = sx3;
978 sx3 = sx2;
979 sx2 = sx1;
980 sx1 = sx0;
981 i += 1;
982 }
983}
984
985#[allow(clippy::too_many_arguments)]
986fn comb_filter(
987 y: &mut [f32],
988 x: &[f32],
989 y_idx: usize,
990 x_idx: usize,
991 t0: usize,
992 t1: usize,
993 n: usize,
994 g0: f32,
995 g1: f32,
996 tapset0: i32,
997 tapset1: i32,
998 window: &[f32],
999 overlap: usize,
1000) {
1001 if g0 == 0.0 && g1 == 0.0 {
1002 if x_idx != y_idx || !std::ptr::eq(x.as_ptr(), y.as_ptr()) {
1003 y[y_idx..y_idx + n].copy_from_slice(&x[x_idx..x_idx + n]);
1004 }
1005 return;
1006 }
1007
1008 let t0 = t0.clamp(
1009 COMBFILTER_MINPERIOD,
1010 x_idx.saturating_sub(2).max(COMBFILTER_MINPERIOD),
1011 );
1012 let t1 = t1.clamp(
1013 COMBFILTER_MINPERIOD,
1014 x_idx.saturating_sub(2).max(COMBFILTER_MINPERIOD),
1015 );
1016
1017 let g00 = g0 * PREFILTER_GAINS[tapset0 as usize][0];
1018 let g01 = g0 * PREFILTER_GAINS[tapset0 as usize][1];
1019 let g02 = g0 * PREFILTER_GAINS[tapset0 as usize][2];
1020
1021 let g10 = g1 * PREFILTER_GAINS[tapset1 as usize][0];
1022 let g11 = g1 * PREFILTER_GAINS[tapset1 as usize][1];
1023 let g12 = g1 * PREFILTER_GAINS[tapset1 as usize][2];
1024
1025 let mut x1 = x[x_idx - t1 + 1];
1026 let mut x2 = x[x_idx - t1];
1027 let mut x3 = x[x_idx - t1 - 1];
1028 let mut x4 = x[x_idx - t1 - 2];
1029
1030 let mut inner_overlap = overlap;
1031 if g0 == g1 && t0 == t1 && tapset0 == tapset1 {
1032 inner_overlap = 0;
1033 }
1034
1035 let mut i = 0;
1036 while i < inner_overlap && i < n {
1037 let x0 = x[x_idx + i - t1 + 2];
1038 let f = window[i] * window[i];
1039 y[y_idx + i] = x[x_idx + i]
1040 + (1.0 - f)
1041 * (g00 * x[x_idx + i - t0]
1042 + g01 * (x[x_idx + i - t0 + 1] + x[x_idx + i - t0 - 1])
1043 + g02 * (x[x_idx + i - t0 + 2] + x[x_idx + i - t0 - 2]))
1044 + f * (g10 * x2 + g11 * (x1 + x3) + g12 * (x0 + x4));
1045
1046 x4 = x3;
1047 x3 = x2;
1048 x2 = x1;
1049 x1 = x0;
1050 i += 1;
1051 }
1052
1053 if i < n {
1054 if g1 == 0.0 {
1055 y[y_idx + i..y_idx + n].copy_from_slice(&x[x_idx + i..x_idx + n]);
1056 } else {
1057 comb_filter_const(y, x, y_idx + i, x_idx + i, t1, n - i, g10, g11, g12);
1058 }
1059 }
1060}
1061
1062fn comb_filter_inplace(
1066 buf: &mut [f32],
1067 y_idx: usize,
1068 t0: usize,
1069 t1: usize,
1070 n: usize,
1071 g0: f32,
1072 g1: f32,
1073 tapset0: i32,
1074 tapset1: i32,
1075 window: &[f32],
1076 overlap: usize,
1077) {
1078 if g0 == 0.0 && g1 == 0.0 {
1079 return;
1081 }
1082
1083 let t0 = t0.clamp(COMBFILTER_MINPERIOD, y_idx - 2);
1084 let t1 = t1.clamp(COMBFILTER_MINPERIOD, y_idx - 2);
1085
1086 let g00 = g0 * PREFILTER_GAINS[tapset0 as usize][0];
1087 let g01 = g0 * PREFILTER_GAINS[tapset0 as usize][1];
1088 let g02 = g0 * PREFILTER_GAINS[tapset0 as usize][2];
1089
1090 let g10 = g1 * PREFILTER_GAINS[tapset1 as usize][0];
1091 let g11 = g1 * PREFILTER_GAINS[tapset1 as usize][1];
1092 let g12 = g1 * PREFILTER_GAINS[tapset1 as usize][2];
1093
1094 let mut inner_overlap = overlap;
1095 if g0 == g1 && t0 == t1 && tapset0 == tapset1 {
1096 inner_overlap = 0;
1097 }
1098
1099 let mut i = 0;
1100 while i < inner_overlap && i < n {
1101 let idx = y_idx + i;
1102 let f = window[i] * window[i];
1103 let s = buf[idx]; let r0 = buf[idx - t0];
1105 let r0p1 = buf[idx - t0 + 1];
1106 let r0m1 = buf[idx - t0 - 1];
1107 let r0p2 = buf[idx - t0 + 2];
1108 let r0m2 = buf[idx - t0 - 2];
1109 let r1 = buf[idx - t1];
1110 let r1p1 = buf[idx - t1 + 1];
1111 let r1m1 = buf[idx - t1 - 1];
1112 let r1p2 = buf[idx - t1 + 2];
1113 let r1m2 = buf[idx - t1 - 2];
1114 buf[idx] = s
1115 + (1.0 - f) * (g00 * r0 + g01 * (r0p1 + r0m1) + g02 * (r0p2 + r0m2))
1116 + f * (g10 * r1 + g11 * (r1p1 + r1m1) + g12 * (r1p2 + r1m2));
1117 i += 1;
1118 }
1119
1120 #[cfg(target_arch = "x86_64")]
1126 {
1127 if i + 8 <= n && t1 >= 10 && std::arch::is_x86_feature_detected!("avx2") {
1128 unsafe {
1129 i = comb_filter_const_avx2(buf, y_idx, i, n, t1, g10, g11, g12);
1130 }
1131 }
1132 }
1133 while i < n {
1134 let idx = y_idx + i;
1135 let s = buf[idx];
1136 let r1 = buf[idx - t1];
1137 let r1p1 = buf[idx - t1 + 1];
1138 let r1m1 = buf[idx - t1 - 1];
1139 let r1p2 = buf[idx - t1 + 2];
1140 let r1m2 = buf[idx - t1 - 2];
1141 buf[idx] = s + g10 * r1 + g11 * (r1p1 + r1m1) + g12 * (r1p2 + r1m2);
1142 i += 1;
1143 }
1144}
1145
1146#[cfg(target_arch = "x86_64")]
1152#[target_feature(enable = "avx2")]
1153unsafe fn comb_filter_const_avx2(
1154 buf: &mut [f32],
1155 y_idx: usize,
1156 mut i: usize,
1157 n: usize,
1158 t1: usize,
1159 g10: f32,
1160 g11: f32,
1161 g12: f32,
1162) -> usize {
1163 use std::arch::x86_64::*;
1164 let vg10 = _mm256_set1_ps(g10);
1165 let vg11 = _mm256_set1_ps(g11);
1166 let vg12 = _mm256_set1_ps(g12);
1167 let p = buf.as_mut_ptr();
1168 while i + 8 <= n {
1169 let idx = y_idx + i;
1170 let base = idx - t1; let s = _mm256_loadu_ps(p.add(idx));
1172 let r1 = _mm256_loadu_ps(p.add(base));
1173 let r1p1 = _mm256_loadu_ps(p.add(base + 1));
1174 let r1m1 = _mm256_loadu_ps(p.add(base - 1));
1175 let r1p2 = _mm256_loadu_ps(p.add(base + 2));
1176 let r1m2 = _mm256_loadu_ps(p.add(base - 2));
1177 let a = _mm256_add_ps(r1p1, r1m1);
1178 let b = _mm256_add_ps(r1p2, r1m2);
1179 let mut out = _mm256_add_ps(s, _mm256_mul_ps(vg10, r1));
1181 out = _mm256_add_ps(out, _mm256_mul_ps(vg11, a));
1182 out = _mm256_add_ps(out, _mm256_mul_ps(vg12, b));
1183 _mm256_storeu_ps(p.add(idx), out);
1184 i += 8;
1185 }
1186 i
1187}
1188
1189fn run_prefilter(
1190 in_buf: &mut [f32],
1191 prefilter_mem: &mut [f32],
1192 prefilter_period: usize,
1193 prefilter_gain: f32,
1194 prefilter_tapset: i32,
1195 tapset_decision: i32,
1196 window: &[f32],
1197 channels: usize,
1198 frame_size: usize,
1199 overlap: usize,
1200
1201 pre: &mut [f32],
1202 pitch_buf: &mut [f32],
1203
1204 analysis: &AnalysisInfo,
1205 loss_rate: i32,
1206 nb_available_bytes: i32,
1207) -> (bool, f32, usize) {
1208 let _prof = crate::prof::scope(crate::prof::Stage::CeltPrefilter);
1209 let max_period = COMBFILTER_MAXPERIOD;
1210 let min_period = COMBFILTER_MINPERIOD;
1211 let buf_stride = frame_size + overlap;
1212 let pre_size = max_period + frame_size;
1213
1214 for c in 0..channels {
1215 pre[c * pre_size..c * pre_size + max_period]
1216 .copy_from_slice(&prefilter_mem[c * max_period..(c + 1) * max_period]);
1217 pre[c * pre_size + max_period..c * pre_size + pre_size].copy_from_slice(
1218 &in_buf[c * buf_stride + overlap..c * buf_stride + overlap + frame_size],
1219 );
1220 }
1221
1222 let pitch_buf_len = (max_period + frame_size) >> 1;
1223 {
1224 let pre_slices: Vec<&[f32]> = (0..channels)
1225 .map(|c| &pre[c * pre_size..c * pre_size + pre_size])
1226 .collect();
1227 crate::pitch::pitch_downsample(&pre_slices, pitch_buf, pitch_buf_len, channels, 2);
1228 }
1229
1230 let search_max = max_period - 3 * min_period;
1231 let pitch_result = crate::pitch::pitch_search(
1232 &pitch_buf[max_period >> 1..],
1233 pitch_buf,
1234 frame_size,
1235 search_max,
1236 );
1237 let mut pitch_index = (max_period - pitch_result).min(max_period - 2);
1238
1239 let gain1_raw = crate::pitch::remove_doubling(
1240 pitch_buf,
1241 max_period,
1242 min_period,
1243 frame_size,
1244 &mut pitch_index,
1245 prefilter_period,
1246 prefilter_gain,
1247 );
1248 let mut gain1 = gain1_raw * 0.7;
1249
1250 if loss_rate > 2 {
1253 gain1 *= 0.5;
1254 }
1255 if loss_rate > 4 {
1256 gain1 *= 0.5;
1257 }
1258 if loss_rate > 8 {
1259 gain1 = 0.0;
1260 }
1261
1262 if analysis.valid {
1264 gain1 *= analysis.max_pitch_ratio;
1265 }
1266
1267 let mut pf_threshold = 0.2f32;
1268 if (pitch_index as i32 - prefilter_period as i32).unsigned_abs() as usize * 10 > pitch_index {
1269 pf_threshold += 0.2;
1270 }
1271 if nb_available_bytes < 25 {
1274 pf_threshold += 0.1;
1275 }
1276 if nb_available_bytes < 35 {
1277 pf_threshold += 0.1;
1278 }
1279 if prefilter_gain > 0.4 {
1280 pf_threshold -= 0.1;
1281 }
1282 if prefilter_gain > 0.55 {
1283 pf_threshold -= 0.1;
1284 }
1285 pf_threshold = pf_threshold.max(0.2);
1286
1287 let pf_on;
1288 if gain1 < pf_threshold {
1289 gain1 = 0.0;
1290 pf_on = false;
1291 } else {
1292 if (gain1 - prefilter_gain).abs() < 0.1 {
1293 gain1 = prefilter_gain;
1294 }
1295 let qg = ((gain1 * 32.0 / 3.0 + 0.5).floor() as i32 - 1).clamp(0, 7);
1296 gain1 = 0.09375 * (qg + 1) as f32;
1297 pf_on = true;
1298 }
1299
1300 let offset = 0usize;
1303 let prev_period = prefilter_period.clamp(COMBFILTER_MINPERIOD, max_period - 2);
1304
1305 for c in 0..channels {
1306 if offset > 0 {
1307 let pre_c = &pre[c * pre_size..];
1308 comb_filter(
1309 in_buf,
1310 pre_c,
1311 c * buf_stride + overlap,
1312 max_period,
1313 prev_period,
1314 prev_period,
1315 offset,
1316 -prefilter_gain,
1317 -prefilter_gain,
1318 prefilter_tapset,
1319 prefilter_tapset,
1320 window,
1321 0,
1322 );
1323 }
1324
1325 {
1326 let pre_c = &pre[c * pre_size..];
1327 comb_filter(
1328 in_buf,
1329 pre_c,
1330 c * buf_stride + overlap + offset,
1331 max_period + offset,
1332 prev_period,
1333 pitch_index,
1334 frame_size - offset,
1335 -prefilter_gain,
1336 -gain1,
1337 prefilter_tapset,
1338 tapset_decision,
1339 window,
1340 overlap,
1341 );
1342 }
1343 }
1344
1345 for c in 0..channels {
1346 if frame_size >= max_period {
1347 prefilter_mem[c * max_period..(c + 1) * max_period].copy_from_slice(
1348 &pre[c * pre_size + frame_size..c * pre_size + frame_size + max_period],
1349 );
1350 } else {
1351 let shift = max_period - frame_size;
1352 prefilter_mem.copy_within(
1353 c * max_period + frame_size..(c + 1) * max_period,
1354 c * max_period,
1355 );
1356 prefilter_mem[c * max_period + shift..(c + 1) * max_period].copy_from_slice(
1357 &pre[c * pre_size + max_period..c * pre_size + max_period + frame_size],
1358 );
1359 }
1360 }
1361
1362 (pf_on, gain1, pitch_index)
1363}
1364
1365const STRIDE_ACCESS_PAD: usize = crate::pvq::MAX_PVQ_N * 8;
1366
1367#[allow(clippy::too_many_arguments)]
1372fn compute_vbr_target(
1373 mode: &CeltMode,
1374 base_target: i32,
1375 lm: i32,
1376 last_coded_bands: i32,
1377 channels: i32,
1378 intensity: i32,
1379 constrained_vbr: bool,
1380 stereo_saving: f32,
1381 tot_boost: i32,
1382 tf_estimate: f32,
1383 max_depth: f32,
1384) -> i32 {
1385 let nb_ebands = mode.nb_ebands as i32;
1386 let e_bands = mode.e_bands;
1387 let coded_bands = if last_coded_bands != 0 { last_coded_bands } else { nb_ebands };
1388 let mut coded_bins = (e_bands[coded_bands as usize] as i32) << lm;
1389 if channels == 2 {
1390 coded_bins += (e_bands[intensity.min(coded_bands) as usize] as i32) << lm;
1391 }
1392
1393 let mut target = base_target;
1394
1395 if channels == 2 {
1397 let coded_stereo_bands = intensity.min(coded_bands);
1398 let coded_stereo_dof =
1399 ((e_bands[coded_stereo_bands as usize] as i32) << lm) - coded_stereo_bands;
1400 let max_frac = 0.8f32 * coded_stereo_dof as f32 / coded_bins as f32;
1402 let ss = stereo_saving.min(1.0);
1403 target -= ((max_frac * target as f32) as i32)
1404 .min((((ss - 0.1) * ((coded_stereo_dof << BITRES) as f32)) as i32).max(i32::MIN));
1405 }
1406 target += tot_boost - (19 << lm);
1408 let tf_calibration = 0.044f32;
1410 target += (2.0 * (tf_estimate - tf_calibration) * target as f32) as i32;
1411
1412 {
1414 let bins = (e_bands[nb_ebands as usize - 2] as i32) << lm;
1415 let mut floor_depth = ((channels * bins << BITRES) as f32 * max_depth) as i32;
1416 floor_depth = floor_depth.max(target >> 2);
1417 target = target.min(floor_depth);
1418 }
1419
1420 if constrained_vbr {
1422 target = base_target + (0.67 * (target - base_target) as f32) as i32;
1423 }
1424
1425 target.min(2 * base_target)
1427}
1428
1429pub struct CeltEncoder {
1430 mode: &'static CeltMode,
1431 channels: usize,
1432 pub complexity: i32,
1433 syn_mem: Vec<f32>,
1434 enc_decode_mem: Vec<f32>,
1435 old_band_e: Vec<f32>,
1436 preemph_mem: Vec<f32>,
1437 tonal_average: i32,
1438 hf_average: i32,
1439 tapset_decision: i32,
1440 spread_decision: i32,
1441 intensity: i32,
1442 last_coded_bands: i32,
1443 pub lsb_depth: i32,
1445 pub vbr_rate: i32,
1447 pub constrained_vbr: bool,
1449 vbr_reservoir: i32,
1450 vbr_drift: i32,
1451 vbr_offset: i32,
1452 vbr_count: i32,
1453 prefilter_mem: Vec<f32>,
1454 prefilter_period: usize,
1455 prefilter_gain: f32,
1456 prefilter_tapset: i32,
1457 old_band_e2: Vec<f32>,
1458 old_band_e3: Vec<f32>,
1459 last_band_log_e: Vec<f32>,
1460 delayed_intra: f32,
1461
1462 w_in_buf: Vec<f32>,
1463 w_freq: Vec<f32>,
1464 w_band_e: Vec<f32>,
1465 w_x: Vec<f32>,
1466 w_band_log_e: Vec<f32>,
1467 w_band_log_e2: Vec<f32>,
1468 w_error: Vec<f32>,
1469 w_tf_res: Vec<i32>,
1470 w_cap: Vec<i32>,
1471 w_offsets: Vec<i32>,
1472 w_pulses: Vec<i32>,
1473 w_ebits: Vec<i32>,
1474 w_fine_priority: Vec<i32>,
1475 w_collapse_masks: Vec<u32>,
1476 w_band_amp_synth: Vec<f32>,
1477 w_freq_synth: Vec<f32>,
1478 consec_transient: i32,
1479
1480 w_prefilter_pre: Vec<f32>,
1481 w_prefilter_pitch_buf: Vec<f32>,
1482
1483 w_transient_tmp: Vec<f32>,
1484 w_transient_tmp2: Vec<f32>,
1485
1486 pub(crate) analysis: AnalysisInfo,
1487 loss_rate: i32,
1488}
1489
1490const INTEN_THRESHOLDS: [i32; 21] = [
1491 1, 2, 3, 4, 5, 6, 7, 8, 16, 24, 36, 44, 50, 56, 62, 67, 72, 79, 88, 106, 134,
1492];
1493const INTEN_HYSTERESIS: [i32; 21] = [
1494 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2, 2, 3, 3, 4, 5, 6, 8, 8,
1495];
1496
1497fn hysteresis_decision(val: i32, thresholds: &[i32], hysteresis: &[i32], prev: i32) -> i32 {
1498 let mut i = 0;
1499 while i < thresholds.len() {
1500 if val < thresholds[i] {
1501 break;
1502 }
1503 i += 1;
1504 }
1505 let mut res = i as i32;
1506 if res > prev && val < thresholds[prev as usize] + hysteresis[prev as usize] {
1507 res = prev;
1508 }
1509 if res < prev && res > 0 && val > thresholds[prev as usize - 1] - hysteresis[prev as usize - 1]
1510 {
1511 res = prev;
1512 }
1513 res
1514}
1515
1516#[allow(clippy::too_many_arguments)]
1517fn alloc_trim_analysis(
1518 mode: &CeltMode,
1519 x: &[f32],
1520 band_log_e: &[f32],
1521 end: usize,
1522 lm: i32,
1523 channels: usize,
1524 n0: usize,
1525 stereo_saving: &mut f32,
1526 tf_estimate: f32,
1527 intensity: i32,
1528 surround_trim: f32,
1529 equiv_rate: i32,
1530) -> i32 {
1531 let _prof = crate::prof::scope(crate::prof::Stage::CeltAlloc);
1532 let mut trim = 5.0f32;
1533 if equiv_rate < 64000 {
1534 trim = 4.0;
1535 } else if equiv_rate < 80000 {
1536 let frac = (equiv_rate - 64000) as f32 / 1024.0;
1537 trim = 4.0 + (1.0 / 16.0) * frac;
1538 }
1539
1540 if channels == 2 {
1541 let mut sum = 0.0f32;
1542 for i in 0..8 {
1543 let offset = (mode.e_bands[i] as usize) << lm;
1544 let n = ((mode.e_bands[i + 1] - mode.e_bands[i]) as usize) << lm;
1545 let mut partial = 0.0f32;
1546 for j in 0..n {
1547 partial += x[offset + j] * x[n0 + offset + j];
1548 }
1549 sum += partial;
1550 }
1551 sum = (sum / 8.0).abs().min(1.0);
1552 let mut min_xc = sum;
1553 for i in 8..intensity as usize {
1554 let offset = (mode.e_bands[i] as usize) << lm;
1555 let n = ((mode.e_bands[i + 1] - mode.e_bands[i]) as usize) << lm;
1556 let mut partial = 0.0f32;
1557 for j in 0..n {
1558 partial += x[offset + j] * x[n0 + offset + j];
1559 }
1560 min_xc = min_xc.min(partial.abs());
1561 }
1562 min_xc = min_xc.min(1.0);
1563
1564 let log_xc = (1.001 - sum * sum).log2();
1565 let log_xc2 = (log_xc * 0.5).max((1.001 - min_xc * min_xc).log2());
1566
1567 trim += (-4.0f32).max(0.75 * log_xc);
1568 *stereo_saving = (*stereo_saving + 0.25).min(-0.5 * log_xc2);
1569 }
1570
1571 let mut diff = 0.0f32;
1572 for c in 0..channels {
1573 for i in 0..end - 1 {
1574 diff += band_log_e[c * mode.nb_ebands + i] * (2 + 2 * i as i32 - end as i32) as f32;
1575 }
1576 }
1577 diff /= (channels * (end - 1)) as f32;
1578 trim -= (-2.0f32).max(2.0f32.min((diff + 1.0) / 6.0));
1579 trim -= surround_trim;
1580 trim -= 2.0 * tf_estimate;
1581
1582 let _ = equiv_rate;
1590 if channels == 2 && std::env::var("NO_STEREO_TRIM").is_err() {
1591 trim += 1.0;
1592 }
1593
1594 let trim_index = (trim + 0.5).floor() as i32;
1595 trim_index.clamp(0, 10)
1596}
1597
1598#[inline(always)]
1599fn median3(a: f32, b: f32, c: f32) -> f32 {
1600 let mut v = [a, b, c];
1601 v.sort_by(|x, y| x.partial_cmp(y).unwrap_or(std::cmp::Ordering::Equal));
1602 v[1]
1603}
1604
1605#[inline(always)]
1606fn median5(v: &[f32]) -> f32 {
1607 let mut x = [v[0], v[1], v[2], v[3], v[4]];
1608 x.sort_by(|a, b| a.partial_cmp(b).unwrap_or(std::cmp::Ordering::Equal));
1609 x[2]
1610}
1611
1612#[allow(clippy::too_many_arguments)]
1617fn dynalloc_analysis(
1618 mode: &CeltMode,
1619 band_log_e: &[f32],
1620 band_log_e2: &[f32],
1621 start: usize,
1622 end: usize,
1623 channels: usize,
1624 offsets: &mut [i32],
1625 lsb_depth: i32,
1626 is_transient: bool,
1627 vbr: bool,
1628 constrained_vbr: bool,
1629 lm: usize,
1630 effective_bytes: usize,
1631 analysis: &AnalysisInfo,
1632 importance: &mut [f32],
1633 spread_weight: &mut [i32],
1634) -> f32 {
1635 let _prof = crate::prof::scope(crate::prof::Stage::CeltAlloc);
1636 let nb = mode.nb_ebands;
1637 offsets.fill(0);
1638
1639 let mut noise_floor = [0.0f32; MAX_NB_EBANDS];
1642 for i in 0..end {
1643 noise_floor[i] = 0.0625 * mode.log_n[i] as f32 + 0.5 + (9 - lsb_depth) as f32
1644 - mode.e_means[i]
1645 + 0.0062 * ((i + 5) * (i + 5)) as f32;
1646 }
1647 let mut max_depth = -31.9f32;
1648 for c in 0..channels {
1649 for i in 0..end {
1650 max_depth = max_depth.max(band_log_e[c * nb + i] - noise_floor[i]);
1651 }
1652 }
1653
1654 {
1656 let mut mask = [0.0f32; MAX_NB_EBANDS];
1657 let mut sig = [0.0f32; MAX_NB_EBANDS];
1658 for i in 0..end {
1659 mask[i] = band_log_e[i] - noise_floor[i];
1660 }
1661 if channels == 2 {
1662 for i in 0..end {
1663 mask[i] = mask[i].max(band_log_e[nb + i] - noise_floor[i]);
1664 }
1665 }
1666 sig[..end].copy_from_slice(&mask[..end]);
1667 for i in 1..end {
1668 mask[i] = mask[i].max(mask[i - 1] - 2.0);
1669 }
1670 for i in (0..end.saturating_sub(1)).rev() {
1671 mask[i] = mask[i].max(mask[i + 1] - 3.0);
1672 }
1673 for i in 0..end {
1674 let smr = sig[i] - (0.0f32.max(max_depth - 12.0)).max(mask[i]);
1676 let shift = 5.min(0.max(-((0.5 + smr).floor() as i32)));
1677 spread_weight[i] = 32 >> shift;
1678 }
1679 }
1680
1681 if effective_bytes > 50 && lm >= 1 {
1683 let mut follower = [0.0f32; 2 * MAX_NB_EBANDS];
1684 let mut last = 0usize;
1685 for c in 0..channels {
1686 let base = c * nb;
1687 follower[base] = band_log_e2[base];
1688 for i in 1..end {
1689 if band_log_e2[base + i] > band_log_e2[base + i - 1] + 0.5 {
1692 last = i;
1693 }
1694 follower[base + i] =
1695 (follower[base + i - 1] + 1.5).min(band_log_e2[base + i]);
1696 }
1697 for i in (0..last).rev() {
1698 follower[base + i] = follower[base + i]
1699 .min((follower[base + i + 1] + 2.0).min(band_log_e2[base + i]));
1700 }
1701
1702 let offset = 1.0f32;
1704 if end >= 5 {
1705 for i in 2..end - 2 {
1706 follower[base + i] = follower[base + i]
1707 .max(median5(&band_log_e2[base + i - 2..base + i + 3]) - offset);
1708 }
1709 }
1710 if end >= 3 {
1711 let tmp = median3(
1712 band_log_e2[base],
1713 band_log_e2[base + 1],
1714 band_log_e2[base + 2],
1715 ) - offset;
1716 follower[base] = follower[base].max(tmp);
1717 follower[base + 1] = follower[base + 1].max(tmp);
1718 let tmp = median3(
1719 band_log_e2[base + end - 3],
1720 band_log_e2[base + end - 2],
1721 band_log_e2[base + end - 1],
1722 ) - offset;
1723 follower[base + end - 2] = follower[base + end - 2].max(tmp);
1724 follower[base + end - 1] = follower[base + end - 1].max(tmp);
1725 }
1726
1727 for i in 0..end {
1728 follower[base + i] = follower[base + i].max(noise_floor[i]);
1729 }
1730 }
1731 if channels == 2 {
1732 for i in start..end {
1733 follower[nb + i] = follower[nb + i].max(follower[i] - 4.0);
1735 follower[i] = follower[i].max(follower[nb + i] - 4.0);
1736 follower[i] = 0.5
1737 * ((band_log_e[i] - follower[i]).max(0.0)
1738 + (band_log_e[nb + i] - follower[nb + i]).max(0.0));
1739 }
1740 } else {
1741 for i in start..end {
1742 follower[i] = (band_log_e[i] - follower[i]).max(0.0);
1743 }
1744 }
1745 for i in start..end {
1746 importance[i] = (0.5 + 13.0 * (follower[i].min(4.0)).exp2()).floor();
1747 }
1748 if (!vbr || constrained_vbr) && !is_transient {
1750 for f in follower.iter_mut().take(end).skip(start) {
1751 *f *= 0.5;
1752 }
1753 }
1754 for i in start..end {
1755 if i < 8 {
1756 follower[i] *= 2.0;
1757 }
1758 if i >= 12 {
1759 follower[i] *= 0.5;
1760 }
1761 }
1762 if analysis.valid {
1763 for i in start..end.min(19) {
1764 follower[i] += analysis.leak_boost[i] as f32 * (1.0 / 64.0);
1765 }
1766 }
1767 let mut tot_boost = 0i32;
1768 for i in start..end {
1769 follower[i] = follower[i].min(4.0);
1770
1771 let width =
1772 channels as i32 * (mode.e_bands[i + 1] - mode.e_bands[i]) as i32 * (1 << lm);
1773 let (boost, boost_bits) = if width < 6 {
1774 let b = follower[i] as i32;
1775 (b, (b * width) << BITRES)
1776 } else if width > 48 {
1777 let b = (follower[i] * 8.0) as i32;
1778 (b, ((b * width) << BITRES) / 8)
1779 } else {
1780 let b = (follower[i] * width as f32 / 6.0) as i32;
1781 (b, (b * 6) << BITRES)
1782 };
1783 if (!vbr || (constrained_vbr && !is_transient))
1786 && ((tot_boost + boost_bits) >> BITRES >> 3) > 2 * effective_bytes as i32 / 3
1787 {
1788 let cap = (2 * effective_bytes as i32 / 3) << BITRES << 3;
1789 offsets[i] = cap - tot_boost;
1790 break;
1791 } else {
1792 offsets[i] = boost;
1793 tot_boost += boost_bits;
1794 }
1795 }
1796 } else {
1797 for i in start..end {
1798 importance[i] = 13.0;
1799 }
1800 }
1801 max_depth
1802}
1803
1804impl CeltEncoder {
1805 pub fn new(mode: &'static CeltMode, channels: usize) -> Self {
1806 let overlap = mode.overlap;
1807 let channel_mem_size = 2048 + overlap;
1808 let syn_mem_size = channels * channel_mem_size;
1809 let nb_ebands = mode.nb_ebands;
1810 let nb_x_ch = nb_ebands * channels;
1811 let frame_x_ch = MAX_FRAME_SIZE * channels;
1812 let bufstride_x_ch = (MAX_FRAME_SIZE + overlap) * channels;
1813 Self {
1814 mode,
1815 channels,
1816 complexity: 9,
1817 syn_mem: vec![0.0; syn_mem_size],
1818 enc_decode_mem: vec![0.0; syn_mem_size],
1819 old_band_e: vec![0.0; nb_x_ch],
1820 preemph_mem: vec![0.0; channels],
1821 tonal_average: 256,
1822 hf_average: 0,
1823 tapset_decision: 0,
1824 spread_decision: SPREAD_NORMAL,
1825 intensity: 0,
1826 last_coded_bands: 0,
1827 lsb_depth: 24,
1828 vbr_rate: 0,
1829 constrained_vbr: true,
1830 vbr_reservoir: 0,
1831 vbr_drift: 0,
1832 vbr_offset: 0,
1833 vbr_count: 0,
1834 prefilter_mem: vec![0.0; channels * COMBFILTER_MAXPERIOD],
1835 prefilter_period: COMBFILTER_MINPERIOD,
1836 prefilter_gain: 0.0,
1837 prefilter_tapset: 0,
1838 old_band_e2: vec![0.0; nb_x_ch],
1839 old_band_e3: vec![0.0; nb_x_ch],
1840 last_band_log_e: vec![0.0; nb_x_ch],
1841 delayed_intra: 0.0,
1842
1843 w_in_buf: vec![0.0; bufstride_x_ch],
1844 w_freq: vec![0.0; frame_x_ch + 4],
1845 w_band_e: vec![0.0; nb_x_ch],
1846
1847 w_x: vec![0.0; frame_x_ch + STRIDE_ACCESS_PAD],
1848 w_band_log_e: vec![0.0; nb_x_ch],
1849 w_band_log_e2: vec![0.0; nb_x_ch],
1850 w_error: vec![0.0; nb_x_ch],
1851 w_tf_res: vec![0; nb_ebands],
1852 w_cap: vec![0; nb_ebands],
1853 w_offsets: vec![0; nb_ebands],
1854 w_pulses: vec![0; nb_ebands],
1855 w_ebits: vec![0; nb_x_ch],
1856 w_fine_priority: vec![0; nb_x_ch],
1857 w_collapse_masks: vec![0; nb_x_ch],
1858 w_band_amp_synth: vec![0.0; nb_x_ch],
1859 w_freq_synth: vec![0.0; frame_x_ch + 4],
1860
1861 w_prefilter_pre: vec![0.0; channels * (COMBFILTER_MAXPERIOD + MAX_FRAME_SIZE)],
1862 w_prefilter_pitch_buf: vec![0.0; (COMBFILTER_MAXPERIOD + MAX_FRAME_SIZE) >> 1],
1863 w_transient_tmp: vec![0.0; MAX_TRANSIENT_LEN],
1864 w_transient_tmp2: vec![0.0; MAX_TRANSIENT_LEN / 2],
1865 consec_transient: 0,
1866
1867 analysis: AnalysisInfo::default(),
1868 loss_rate: 0,
1869 }
1870 }
1871
1872 pub fn encode(&mut self, pcm: &[f32], frame_size: usize, rc: &mut RangeCoder) {
1873 self.encode_impl(pcm, frame_size, rc, 0, self.mode.nb_ebands, None)
1874 }
1875
1876 pub fn encode_with_start_band(
1877 &mut self,
1878 pcm: &[f32],
1879 frame_size: usize,
1880 rc: &mut RangeCoder,
1881 start_band: usize,
1882 ) {
1883 self.encode_impl(pcm, frame_size, rc, start_band, self.mode.nb_ebands, None)
1884 }
1885
1886 pub fn encode_with_budget(
1887 &mut self,
1888 pcm: &[f32],
1889 frame_size: usize,
1890 rc: &mut RangeCoder,
1891 start_band: usize,
1892 end_band: usize,
1893 total_bits: i32,
1894 ) {
1895 self.encode_impl(pcm, frame_size, rc, start_band, end_band, Some(total_bits))
1896 }
1897
1898 fn encode_impl(
1899 &mut self,
1900 pcm: &[f32],
1901 frame_size: usize,
1902 rc: &mut RangeCoder,
1903 start_band: usize,
1904 end_band: usize,
1905 explicit_total_bits: Option<i32>,
1906 ) {
1907 debug_assert!(end_band > start_band && end_band <= self.mode.nb_ebands);
1908 let mode = self.mode;
1909 let channels = self.channels;
1910 let nb_ebands = mode.nb_ebands;
1911 let overlap = mode.overlap;
1912 let tell0_frac = rc.tell_frac();
1915
1916 let mut lm = 0;
1917 while (mode.short_mdct_size << lm) != frame_size {
1918 lm += 1;
1919 if lm > mode.max_lm {
1920 break;
1921 }
1922 }
1923 if (mode.short_mdct_size << lm) != frame_size {
1924 lm = 0;
1925 }
1926
1927 let _prof_pre = crate::prof::scope(crate::prof::Stage::CeltPreemph);
1928 let syn_mem_size = 2048 + overlap;
1929 for c in 0..channels {
1930 let channel_offset = c * syn_mem_size;
1931
1932 self.syn_mem.copy_within(
1933 channel_offset + frame_size..channel_offset + syn_mem_size,
1934 channel_offset,
1935 );
1936
1937 let mut m = self.preemph_mem[c];
1938 let coef = mode.preemph[0];
1939 for i in 0..frame_size {
1940 let x = pcm[c * frame_size + i] * 32768.0;
1941 let val = x - m;
1942 self.syn_mem[channel_offset + syn_mem_size - frame_size + i] = val;
1943 m = x * coef;
1944 }
1945 self.preemph_mem[c] = m;
1946 }
1947
1948 let buf_stride = frame_size + overlap;
1949 let in_buf = &mut self.w_in_buf[..buf_stride * channels];
1950 for c in 0..channels {
1951 let channel_offset = c * syn_mem_size;
1952 let in_buf_offset = c * buf_stride;
1953
1954 let src_start = syn_mem_size - frame_size - overlap;
1955 in_buf[in_buf_offset..in_buf_offset + buf_stride].copy_from_slice(
1956 &self.syn_mem[channel_offset + src_start..channel_offset + syn_mem_size],
1957 );
1958 }
1959
1960 drop(_prof_pre);
1961
1962 let nb_available_bytes = (explicit_total_bits.unwrap_or((rc.buf.len() * 8) as i32) >> 3)
1970 - ((rc.tell() + 4) >> 3);
1971 let pf_enabled = start_band == 0
1972 && self.complexity >= 5
1973 && nb_available_bytes > 12 * channels as i32
1974 && std::env::var("CELT_PF_OFF").is_err();
1975 let prefilter_tapset = self.tapset_decision;
1980 let (pf_on, gain1, pitch_index) = if pf_enabled {
1981 run_prefilter(
1982 in_buf,
1983 &mut self.prefilter_mem,
1984 self.prefilter_period,
1985 self.prefilter_gain,
1986 self.prefilter_tapset,
1987 prefilter_tapset,
1988 mode.window,
1989 channels,
1990 frame_size,
1991 overlap,
1992 &mut self.w_prefilter_pre,
1993 &mut self.w_prefilter_pitch_buf,
1994 &self.analysis,
1995 self.loss_rate,
1996 nb_available_bytes,
1997 )
1998 } else {
1999 (false, 0.0f32, COMBFILTER_MINPERIOD)
2000 };
2001
2002 let syn_mem_size = 2048 + overlap;
2007 for c in 0..channels {
2008 let channel_offset = c * syn_mem_size;
2009 let in_buf_offset = c * buf_stride;
2010 self.syn_mem[channel_offset + syn_mem_size - overlap..channel_offset + syn_mem_size]
2011 .copy_from_slice(&in_buf[in_buf_offset + frame_size..in_buf_offset + buf_stride]);
2012 }
2013
2014 let mut tf_estimate = 0.0f32;
2018 let mut tf_chan = 0;
2019 let mut weak_transient = false;
2020 let is_transient = if self.complexity >= 1 {
2021 transient_analysis(
2022 in_buf,
2023 buf_stride,
2024 channels,
2025 &mut tf_estimate,
2026 &mut tf_chan,
2027 false,
2028 &mut weak_transient,
2029 0.0,
2030 0.0,
2031 &mut self.w_transient_tmp,
2032 &mut self.w_transient_tmp2,
2033 )
2034 } else {
2035 false
2036 };
2037
2038 let freq = &mut self.w_freq[..frame_size * channels];
2039 let (shift, b) = (mode.max_lm - lm, 1);
2044 let n = frame_size / b;
2045
2046 for c in 0..channels {
2047 let c_buf_offset = c * buf_stride;
2048
2049 if c == 0 && b == 1 && channels == 1 {
2050 let mut max_val = 0.0f32;
2051 let check_len = (frame_size + overlap).min(buf_stride);
2052 for j in 0..check_len {
2053 max_val = max_val.max(in_buf[c_buf_offset + j].abs());
2054 }
2055 }
2056
2057 for i in 0..b {
2058 mode.mdct.forward(
2059 &in_buf[c_buf_offset + i * n..],
2060 &mut freq[c * frame_size + i..],
2061 mode.window,
2062 overlap,
2063 shift,
2064 b,
2065 );
2066 }
2067 }
2068
2069 let band_e = &mut self.w_band_e[..nb_ebands * channels];
2070 band_e.fill(0.0);
2071 compute_band_energies(mode, freq, band_e, end_band, channels, lm);
2072
2073 let x_pad_end = (frame_size * channels + STRIDE_ACCESS_PAD).min(self.w_x.len());
2074 let x = &mut self.w_x[..x_pad_end];
2075 normalise_bands(
2076 mode,
2077 freq,
2078 x,
2079 band_e,
2080 end_band,
2081 channels,
2082 (1 << lm) as usize,
2083 );
2084
2085 if channels == 1 {
2086 let _ = freq[0];
2087 }
2088
2089 let total_bits = explicit_total_bits.unwrap_or_else(|| (rc.buf.len() * 8) as i32);
2090 self.w_error[..nb_ebands * channels].fill(0.0);
2091 let error = &mut self.w_error[..nb_ebands * channels];
2092
2093 let tell = rc.tell();
2094 let silence = false;
2095 if tell == 1 {
2096 rc.encode_bit_logp(silence, 15);
2097 }
2098
2099 if start_band == 0 && !silence && rc.tell() + 16 <= total_bits {
2100 rc.encode_bit_logp(pf_on, 1);
2101 if pf_on {
2102 let qg = (gain1 / 0.09375 - 1.0 + 0.5).floor() as i32;
2103 let qg = qg.clamp(0, 7);
2104 let pi = (pitch_index + 1) as u32;
2105 let octave = 32 - pi.leading_zeros() - 5;
2111 rc.enc_uint(octave, 6);
2112 rc.enc_bits(pi - (16 << octave), 4 + octave);
2113 rc.enc_bits(qg as u32, 3);
2114 rc.encode_icdf(prefilter_tapset, &TAPSET_ICDF, 2);
2115 }
2116 }
2117
2118 let mut short_blocks = false;
2119 if lm > 0 && rc.tell() + 3 <= total_bits {
2120 rc.encode_bit_logp(is_transient, 3);
2121 if is_transient {
2122 short_blocks = true;
2123 }
2124 }
2125
2126 let mut second_mdct_logs = false;
2130 if short_blocks && self.complexity >= 8 {
2131 let band_log_e2 = &mut self.w_band_log_e2[..nb_ebands * channels];
2132 band_log_e2.fill(-14.0);
2133 crate::bands::amp2log2(mode, 0, end_band, band_e, band_log_e2, channels);
2134 for v in band_log_e2.iter_mut() {
2135 *v += 0.5 * lm as f32;
2136 }
2137 second_mdct_logs = true;
2138 }
2139 if short_blocks {
2140 let b = 1 << lm;
2141 let n = frame_size / b;
2142 for c in 0..channels {
2143 let c_offset = c * buf_stride;
2144 for i in 0..b {
2145 mode.mdct.forward(
2146 &in_buf[c_offset + i * n..c_offset + buf_stride],
2147 &mut freq[c * frame_size + i..],
2148 mode.window,
2149 overlap,
2150 mode.max_lm,
2151 b,
2152 );
2153 }
2154 }
2155
2156 compute_band_energies(mode, freq, band_e, end_band, channels, lm);
2157 normalise_bands(
2158 mode,
2159 freq,
2160 x,
2161 band_e,
2162 end_band,
2163 channels,
2164 (1 << lm) as usize,
2165 );
2166 }
2167
2168 let band_log_e = &mut self.w_band_log_e[..nb_ebands * channels];
2173 band_log_e.fill(-14.0);
2174 crate::bands::amp2log2(mode, 0, end_band, band_e, band_log_e, channels);
2175 if !second_mdct_logs {
2176 self.w_band_log_e2[..nb_ebands * channels].copy_from_slice(band_log_e);
2177 }
2178
2179 let intra_ener = if self.complexity >= 4 {
2180 false
2181 } else {
2182 self.old_band_e[..nb_ebands * channels]
2183 .iter()
2184 .all(|&e| e <= -27.0)
2185 };
2186 quant_coarse_energy_advanced(
2187 mode,
2188 start_band,
2189 end_band,
2190 end_band,
2191 band_log_e,
2192 &mut self.old_band_e,
2193 total_bits as u32,
2194 error,
2195 rc,
2196 channels,
2197 lm,
2198 (total_bits / 8) as usize,
2199 is_transient || intra_ener,
2200 &mut self.delayed_intra,
2201 self.complexity >= 4,
2202 0,
2203 false,
2204 );
2205 let effective_bytes = ((total_bits / 8) as usize).max(1);
2210 let mut importance = [13.0f32; MAX_NB_EBANDS];
2211 let mut spread_weight = [32i32; MAX_NB_EBANDS];
2212 self.w_offsets[..nb_ebands].fill(0);
2213 let max_depth = {
2214 let band_log_e2 = &self.w_band_log_e2[..nb_ebands * channels];
2215 dynalloc_analysis(
2216 mode,
2217 band_log_e,
2218 band_log_e2,
2219 start_band,
2220 end_band,
2221 channels,
2222 &mut self.w_offsets[..nb_ebands],
2223 self.lsb_depth,
2224 is_transient,
2225 self.vbr_rate > 0,
2226 self.constrained_vbr,
2227 lm,
2228 effective_bytes,
2229 &self.analysis,
2230 &mut importance,
2231 &mut spread_weight,
2232 )
2233 };
2234
2235 self.w_tf_res[..nb_ebands].fill(0);
2236 let tf_res = &mut self.w_tf_res[..nb_ebands];
2237 let lambda = 80.max(20480 / effective_bytes + 2) as i32;
2238
2239 let tf_select = if self.complexity >= 2 && effective_bytes >= 15 * channels {
2240 tf_analysis(
2241 mode,
2242 end_band,
2243 is_transient,
2244 tf_res,
2245 lambda,
2246 x,
2247 frame_size,
2248 lm as i32,
2249 tf_estimate,
2250 tf_chan,
2251 &importance,
2252 )
2253 } else {
2254 0
2255 };
2256 tf_encode(
2257 start_band,
2258 end_band,
2259 is_transient,
2260 tf_res,
2261 lm as i32,
2262 tf_select,
2263 rc,
2264 );
2265
2266 let mut dual_stereo_val = if channels == 2 {
2267 stereo_analysis(mode, x, lm as i32, frame_size) as i32
2268 } else {
2269 0
2270 };
2271
2272 let mut stereo_saving = 0.0f32;
2273 let equiv_rate = (total_bits * 48000) / frame_size as i32;
2274 if channels == 2 {
2275 self.intensity = hysteresis_decision(
2276 equiv_rate / 1000,
2277 &INTEN_THRESHOLDS,
2278 &INTEN_HYSTERESIS,
2279 self.intensity,
2280 );
2281 self.intensity = self.intensity.clamp(start_band as i32, end_band as i32);
2287 }
2288
2289 if self.complexity == 0 {
2290 self.spread_decision = SPREAD_NONE;
2291 if rc.tell() + 4 <= total_bits {
2292 rc.encode_icdf(self.spread_decision, &SPREAD_ICDF, 5);
2293 }
2294 } else if rc.tell() + 4 <= total_bits {
2295 if is_transient || self.complexity < 3 || effective_bytes < 10 * channels {
2296 self.spread_decision = SPREAD_NORMAL;
2297 } else {
2298 let update_hf = lm == mode.max_lm;
2299 self.spread_decision = spreading_decision(
2300 mode,
2301 x,
2302 &mut self.tonal_average,
2303 self.spread_decision,
2304 &mut self.hf_average,
2305 &mut self.tapset_decision,
2306 update_hf,
2307 end_band,
2308 channels,
2309 (1 << lm) as usize,
2310 &spread_weight,
2311 );
2312 }
2313 rc.encode_icdf(self.spread_decision, &SPREAD_ICDF, 5);
2314 } else {
2315 self.spread_decision = SPREAD_NORMAL;
2316 }
2317
2318 self.w_cap[..nb_ebands].fill(0);
2319 let cap = &mut self.w_cap[..nb_ebands];
2320 for (i, cap_i) in cap.iter_mut().enumerate() {
2321 let n = (mode.e_bands[i + 1] - mode.e_bands[i]) << lm;
2322 *cap_i = ((mode.cache.caps[nb_ebands * (2 * lm + channels - 1) + i] as i32 + 64)
2323 * channels as i32
2324 * n as i32)
2325 >> 2;
2326 }
2327
2328 let offsets = &mut self.w_offsets[..nb_ebands];
2329
2330 let mut dynalloc_logp = 6i32;
2331 let total_bits_bitres = total_bits << BITRES;
2332 let mut total_boost = 0i32;
2333 let mut tell_frac = rc.tell_frac();
2334
2335 for i in start_band..end_band {
2336 let width =
2337 channels as i32 * (mode.e_bands[i + 1] - mode.e_bands[i]) as i32 * (1 << lm);
2338 let quanta = (width << BITRES).min((6 << BITRES).max(width));
2339 let mut dynalloc_loop_logp = dynalloc_logp;
2340 let mut boost = 0i32;
2341 let mut j = 0i32;
2342
2343 while tell_frac + (dynalloc_loop_logp << BITRES) < total_bits_bitres - total_boost
2344 && boost < cap[i]
2345 {
2346 let flag = j < offsets[i];
2347 rc.encode_bit_logp(flag, dynalloc_loop_logp as u32);
2348 tell_frac = rc.tell_frac();
2349 if !flag {
2350 break;
2351 }
2352 boost += quanta;
2353 total_boost += quanta;
2354 dynalloc_loop_logp = 1;
2355 j += 1;
2356 }
2357
2358 if j > 0 {
2359 dynalloc_logp = 2.max(dynalloc_logp - 1);
2360 }
2361 offsets[i] = boost;
2362 }
2363
2364 let alloc_trim = alloc_trim_analysis(
2365 mode,
2366 x,
2367 band_log_e,
2368 end_band,
2369 lm as i32,
2370 channels,
2371 frame_size,
2372 &mut stereo_saving,
2373 tf_estimate,
2374 self.intensity,
2375 0.0,
2376 equiv_rate,
2377 );
2378 let alloc_trim = if rc.tell_frac() + (6 << BITRES) <= total_bits_bitres - total_boost {
2385 rc.encode_icdf(alloc_trim, &TRIM_ICDF, 7);
2386 alloc_trim
2387 } else {
2388 5
2389 };
2390
2391 let total_bits = if self.vbr_rate > 0 {
2395 let hybrid = start_band != 0;
2396 let lm_diff = mode.max_lm as i32 - lm as i32;
2397 let vbr_rate = self.vbr_rate;
2398 let mut base_target = if hybrid {
2399 0.max(vbr_rate - ((9 * channels as i32 + 4) << BITRES))
2400 } else {
2401 vbr_rate - ((40 * channels as i32 + 20) << BITRES)
2402 };
2403 if self.constrained_vbr {
2404 base_target += self.vbr_offset >> lm_diff;
2405 }
2406 let mut target = if hybrid {
2407 let mut t = base_target;
2410 t += ((tf_estimate - 0.25) * (50 << BITRES) as f32) as i32;
2411 if tf_estimate > 0.7 {
2412 t = t.max(50 << BITRES);
2413 }
2414 t
2415 } else {
2416 compute_vbr_target(
2417 mode,
2418 base_target,
2419 lm as i32,
2420 self.last_coded_bands,
2421 channels as i32,
2422 self.intensity,
2423 self.constrained_vbr,
2424 stereo_saving,
2425 total_boost,
2426 tf_estimate,
2427 max_depth,
2428 )
2429 };
2430 let tell = rc.tell_frac();
2431 target += tell;
2432 let mut min_allowed =
2436 ((tell + total_boost + (1 << (BITRES + 3)) - 1) >> (BITRES + 3)) + 2;
2437 if hybrid {
2438 min_allowed = min_allowed.max(
2439 (tell0_frac + (37 << BITRES) + total_boost + (1 << (BITRES + 3)) - 1)
2440 >> (BITRES + 3),
2441 );
2442 }
2443 let cap_bytes = (total_bits / 8).min(1275 >> (3 - lm as i32));
2444 let mut nb_available = (target + (1 << (BITRES + 2))) >> (BITRES + 3);
2445 nb_available = nb_available.max(min_allowed).min(cap_bytes);
2446
2447 let delta = target - vbr_rate;
2449 let target_q = nb_available << (BITRES + 3);
2450 if self.vbr_count < 970 {
2451 self.vbr_count += 1;
2452 }
2453 let alpha = if self.vbr_count < 970 {
2454 1.0f32 / (self.vbr_count as f32 + 20.0)
2455 } else {
2456 0.001f32
2457 };
2458 if self.constrained_vbr {
2459 self.vbr_reservoir += target_q - vbr_rate;
2460 self.vbr_drift += (alpha
2461 * ((delta * (1 << lm_diff)) - self.vbr_offset - self.vbr_drift) as f32)
2462 as i32;
2463 self.vbr_offset = -self.vbr_drift;
2464 if self.vbr_reservoir < 0 {
2465 let adjust = (-self.vbr_reservoir) / (8 << BITRES);
2466 nb_available += adjust;
2467 self.vbr_reservoir = 0;
2468 }
2469 }
2470 let nb_compressed = cap_bytes.min(nb_available).max(2);
2471 rc.shrink(nb_compressed as u32);
2472 nb_compressed * 8
2473 } else {
2474 total_bits
2475 };
2476
2477 let mut intensity = self.intensity;
2478 self.w_pulses[..nb_ebands].fill(0);
2479 let pulses = &mut self.w_pulses[..nb_ebands];
2480
2481 let stereo = channels > 1;
2482 let ebands_stereo = if stereo {
2483 nb_ebands * channels
2484 } else {
2485 nb_ebands
2486 };
2487 self.w_fine_priority[..ebands_stereo].fill(0);
2488 let fine_priority = &mut self.w_fine_priority[..ebands_stereo];
2489 self.w_ebits[..ebands_stereo].fill(0);
2490 let ebits = &mut self.w_ebits[..ebands_stereo];
2491 let mut balance = 0;
2492
2493 let anti_collapse_rsv = if is_transient && lm >= 2 {
2502 let remaining = (total_bits << BITRES) - rc.tell_frac() - 1;
2503 if remaining >= ((lm as i32 + 2) << BITRES) {
2504 1i32 << BITRES
2505 } else {
2506 0
2507 }
2508 } else {
2509 0
2510 };
2511
2512 let signal_bandwidth = end_band as i32 - 1;
2518 let _ = equiv_rate;
2519
2520 self.last_coded_bands = clt_compute_allocation(
2521 mode,
2522 start_band,
2523 end_band,
2524 offsets,
2525 cap,
2526 alloc_trim,
2527 &mut intensity,
2528 &mut dual_stereo_val,
2529 (total_bits << BITRES) - rc.tell_frac() - 1 - anti_collapse_rsv,
2530 &mut balance,
2531 pulses,
2532 ebits,
2533 fine_priority,
2534 channels as i32,
2535 lm as i32,
2536 rc,
2537 true,
2538 0,
2539 signal_bandwidth,
2540 );
2541
2542 quant_fine_energy(
2543 mode,
2544 start_band,
2545 end_band,
2546 &mut self.old_band_e,
2547 error,
2548 ebits,
2549 rc,
2550 channels,
2551 );
2552
2553 self.w_collapse_masks[..nb_ebands * channels].fill(0);
2554 let collapse_masks = &mut self.w_collapse_masks[..nb_ebands * channels];
2555 let (x_split, y_split) = x.split_at_mut(frame_size);
2556 let y_opt = if channels == 2 { Some(y_split) } else { None };
2557
2558 let mut dual_stereo = dual_stereo_val != 0;
2559
2560 let theta_rdo = channels == 2 && !dual_stereo && self.complexity >= 8;
2561 let resynth = theta_rdo;
2562
2563 quant_all_bands(
2564 true,
2565 mode,
2566 start_band,
2567 end_band,
2568 x_split,
2569 y_opt,
2570 collapse_masks,
2571 band_e,
2572 pulses,
2573 short_blocks,
2574 self.spread_decision,
2575 &mut dual_stereo,
2576 intensity as usize,
2577 tf_res,
2578 (total_bits << BITRES) - anti_collapse_rsv,
2579 &mut balance,
2580 rc,
2581 lm as i32,
2582 self.last_coded_bands,
2583 resynth,
2584 false,
2585 &mut 0u32,
2586 );
2587
2588 if anti_collapse_rsv > 0 {
2589 let anti_collapse_on = if self.consec_transient < 2 {
2590 1u32
2591 } else {
2592 0u32
2593 };
2594 rc.enc_bits(anti_collapse_on, 1);
2595 }
2596
2597 quant_energy_finalise(
2598 mode,
2599 start_band,
2600 end_band,
2601 &mut self.old_band_e,
2602 error,
2603 ebits,
2604 fine_priority,
2605 total_bits - rc.tell(),
2606 rc,
2607 channels,
2608 );
2609
2610 if resynth {
2611 let _prof = crate::prof::scope(crate::prof::Stage::CeltSynth);
2612 let band_amp_synth = &mut self.w_band_amp_synth[..nb_ebands * channels];
2613 log2amp(mode, nb_ebands, band_amp_synth, &self.old_band_e, channels);
2614 self.w_freq_synth[..frame_size * channels].fill(0.0);
2615 let freq_synth = &mut self.w_freq_synth[..frame_size * channels];
2616 denormalise_bands(
2617 mode,
2618 x,
2619 freq_synth,
2620 band_amp_synth,
2621 start_band,
2622 end_band,
2623 channels,
2624 (1 << lm) as usize,
2625 );
2626 let (syn_shift, syn_b) = if is_transient {
2627 (mode.max_lm, 1 << lm)
2628 } else {
2629 (mode.max_lm - lm, 1)
2630 };
2631 let syn_n = frame_size / syn_b;
2632 let decode_buf_size = 2048;
2633
2634 for c in 0..channels {
2635 let co = c * syn_mem_size;
2636 self.enc_decode_mem
2637 .copy_within(co + frame_size..co + decode_buf_size + overlap, co);
2638 }
2639
2640 for c in 0..channels {
2641 let co = c * syn_mem_size;
2642 let out_syn_idx = decode_buf_size - frame_size;
2643 for bi in 0..syn_b {
2644 let syn_stride = if is_transient {
2645 mode.short_mdct_size
2646 } else {
2647 syn_n
2648 };
2649 mode.mdct.backward(
2650 &freq_synth[c * frame_size + bi..],
2651 &mut self.enc_decode_mem[co + out_syn_idx + bi * syn_stride..],
2652 mode.window,
2653 overlap,
2654 syn_shift,
2655 syn_b,
2656 );
2657 }
2658 }
2659 }
2660
2661 self.last_band_log_e.copy_from_slice(&self.old_band_e);
2662
2663 if !is_transient {
2664 self.old_band_e3.copy_from_slice(&self.old_band_e2);
2665 self.old_band_e2.copy_from_slice(&self.old_band_e);
2666 } else {
2667 for i in 0..channels * nb_ebands {
2668 self.old_band_e2[i] = self.old_band_e2[i].min(self.old_band_e[i]);
2669 }
2670 }
2671
2672 for c in 0..channels {
2677 for i in 0..start_band {
2678 self.old_band_e[c * nb_ebands + i] = 0.0;
2679 self.old_band_e2[c * nb_ebands + i] = -28.0;
2680 self.old_band_e3[c * nb_ebands + i] = -28.0;
2681 }
2682 for i in end_band..nb_ebands {
2683 self.old_band_e[c * nb_ebands + i] = 0.0;
2684 self.old_band_e2[c * nb_ebands + i] = -28.0;
2685 self.old_band_e3[c * nb_ebands + i] = -28.0;
2686 }
2687 }
2688
2689 rc.pad_to_bits(total_bits);
2690
2691 if pf_on {
2692 self.prefilter_period = pitch_index;
2693 self.prefilter_gain = gain1;
2694 } else {
2695 self.prefilter_period = COMBFILTER_MINPERIOD;
2696 self.prefilter_gain = 0.0;
2697 }
2698 self.prefilter_tapset = prefilter_tapset;
2699
2700 if is_transient {
2701 self.consec_transient += 1;
2702 } else {
2703 self.consec_transient = 0;
2704 }
2705 }
2706}
2707
2708pub struct CeltDecoder {
2709 mode: &'static CeltMode,
2710 channels: usize,
2711 stream_channels: usize,
2715 decode_mem: Vec<f32>,
2716 old_band_e: Vec<f32>,
2717 preemph_mem: Vec<f32>,
2718 prefilter_mem: Vec<f32>,
2719 prefilter_period: usize,
2720 prefilter_period_old: usize,
2721 prefilter_gain: f32,
2722 prefilter_gain_old: f32,
2723 prefilter_tapset: i32,
2724 prefilter_tapset_old: i32,
2725 old_band_e2: Vec<f32>,
2726 old_band_e3: Vec<f32>,
2727 rng: u32,
2728 loss_count: u32,
2730 last_pitch_index: i32,
2732 plc_lpc: Vec<f32>,
2735
2736 w_tf_res: Vec<i32>,
2737 w_cap: Vec<i32>,
2738 w_offsets: Vec<i32>,
2739 w_pulses: Vec<i32>,
2740 w_ebits: Vec<i32>,
2741 w_fine_priority: Vec<i32>,
2742 w_x: Vec<f32>,
2743 w_collapse_masks: Vec<u32>,
2744 w_freq: Vec<f32>,
2745 w_band_amp: Vec<f32>,
2746 w_pcm_frame: Vec<f32>,
2747 w_post: Vec<f32>,
2748}
2749
2750impl CeltDecoder {
2751 pub fn new(mode: &'static CeltMode, channels: usize) -> Self {
2752 let overlap = mode.overlap;
2753 let nb_ebands = mode.nb_ebands;
2754 let nb_x_ch = nb_ebands * channels;
2755 let dec_frame_x_ch = DECODE_BUFFER_SIZE * channels;
2756 Self {
2757 mode,
2758 channels,
2759 stream_channels: channels,
2760 decode_mem: vec![0.0; channels * (DECODE_BUFFER_SIZE + overlap)],
2761 old_band_e: vec![0.0; nb_x_ch],
2765 preemph_mem: vec![0.0; channels],
2766 prefilter_mem: vec![0.0; channels * COMBFILTER_MAXPERIOD],
2767 prefilter_period: COMBFILTER_MINPERIOD,
2768 prefilter_period_old: COMBFILTER_MINPERIOD,
2769 prefilter_gain: 0.0,
2770 prefilter_gain_old: 0.0,
2771 prefilter_tapset: 0,
2772 prefilter_tapset_old: 0,
2773 old_band_e2: vec![-28.0; nb_x_ch],
2775 old_band_e3: vec![-28.0; nb_x_ch],
2776 rng: 0,
2777 loss_count: 0,
2778 last_pitch_index: 0,
2779 plc_lpc: vec![0.0; channels * PLC_LPC_ORDER],
2780
2781 w_tf_res: vec![0; nb_ebands],
2782 w_cap: vec![0; nb_ebands],
2783 w_offsets: vec![0; nb_ebands],
2784 w_pulses: vec![0; nb_ebands],
2785 w_ebits: vec![0; nb_x_ch],
2786 w_fine_priority: vec![0; nb_x_ch],
2787
2788 w_x: vec![0.0; dec_frame_x_ch + STRIDE_ACCESS_PAD],
2789 w_collapse_masks: vec![0; nb_x_ch],
2790 w_freq: vec![0.0; dec_frame_x_ch + 4], w_band_amp: vec![0.0; nb_x_ch],
2792 w_pcm_frame: vec![0.0; DECODE_BUFFER_SIZE],
2793 w_post: vec![0.0; DECODE_BUFFER_SIZE + COMBFILTER_MAXPERIOD],
2794 }
2795 }
2796
2797 pub fn seed_from(&mut self, src: &CeltDecoder) {
2804 let overlap = self.mode.overlap;
2805 let nb = self.mode.nb_ebands;
2806 let per_dm = DECODE_BUFFER_SIZE + overlap;
2807 let src_ch = src.channels.max(1);
2808 for c in 0..self.channels {
2809 let sc = c.min(src_ch - 1);
2810 self.decode_mem[c * per_dm..(c + 1) * per_dm]
2811 .copy_from_slice(&src.decode_mem[sc * per_dm..(sc + 1) * per_dm]);
2812 self.old_band_e[c * nb..(c + 1) * nb]
2813 .copy_from_slice(&src.old_band_e[sc * nb..(sc + 1) * nb]);
2814 self.old_band_e2[c * nb..(c + 1) * nb]
2815 .copy_from_slice(&src.old_band_e2[sc * nb..(sc + 1) * nb]);
2816 self.old_band_e3[c * nb..(c + 1) * nb]
2817 .copy_from_slice(&src.old_band_e3[sc * nb..(sc + 1) * nb]);
2818 self.preemph_mem[c] = src.preemph_mem[sc];
2819 self.prefilter_mem[c * COMBFILTER_MAXPERIOD..(c + 1) * COMBFILTER_MAXPERIOD]
2820 .copy_from_slice(
2821 &src.prefilter_mem[sc * COMBFILTER_MAXPERIOD..(sc + 1) * COMBFILTER_MAXPERIOD],
2822 );
2823 }
2824 self.prefilter_period = src.prefilter_period;
2825 self.prefilter_period_old = src.prefilter_period_old;
2826 self.prefilter_gain = src.prefilter_gain;
2827 self.prefilter_gain_old = src.prefilter_gain_old;
2828 self.prefilter_tapset = src.prefilter_tapset;
2829 self.prefilter_tapset_old = src.prefilter_tapset_old;
2830 self.rng = src.rng;
2831 }
2832
2833 pub fn set_stream_channels(&mut self, sc: usize) {
2836 self.stream_channels = sc.clamp(1, self.channels);
2837 }
2838
2839 pub fn reset(&mut self) {
2842 self.decode_mem.fill(0.0);
2843 self.old_band_e.fill(0.0);
2844 self.old_band_e2.fill(-28.0);
2845 self.old_band_e3.fill(-28.0);
2846 self.preemph_mem.fill(0.0);
2847 self.prefilter_mem.fill(0.0);
2848 self.prefilter_period = COMBFILTER_MINPERIOD;
2849 self.prefilter_period_old = COMBFILTER_MINPERIOD;
2850 self.prefilter_gain = 0.0;
2851 self.prefilter_gain_old = 0.0;
2852 self.prefilter_tapset = 0;
2853 self.prefilter_tapset_old = 0;
2854 self.rng = 0;
2855 }
2856
2857 pub fn decode(&mut self, compressed: &[u8], frame_size: usize, pcm: &mut [f32]) -> usize {
2858 self.decode_impl(compressed, frame_size, pcm, 0, self.mode.nb_ebands)
2859 }
2860
2861 pub fn decode_with_start_band(
2862 &mut self,
2863 compressed: &[u8],
2864 frame_size: usize,
2865 pcm: &mut [f32],
2866 start_band: usize,
2867 ) -> usize {
2868 self.decode_impl(compressed, frame_size, pcm, start_band, self.mode.nb_ebands)
2869 }
2870
2871 pub fn decode_from_range_coder(
2872 &mut self,
2873 rc: &mut RangeCoder,
2874 total_bits: i32,
2875 frame_size: usize,
2876 pcm: &mut [f32],
2877 start_band: usize,
2878 ) -> usize {
2879 self.decode_impl_from_rc(
2880 rc,
2881 total_bits,
2882 frame_size,
2883 pcm,
2884 start_band,
2885 self.mode.nb_ebands,
2886 )
2887 }
2888
2889 pub fn decode_from_range_coder_with_band_range(
2890 &mut self,
2891 rc: &mut RangeCoder,
2892 total_bits: i32,
2893 frame_size: usize,
2894 pcm: &mut [f32],
2895 start_band: usize,
2896 end_band: usize,
2897 ) -> usize {
2898 self.decode_impl_from_rc(rc, total_bits, frame_size, pcm, start_band, end_band)
2899 }
2900
2901 fn decode_impl(
2902 &mut self,
2903 compressed: &[u8],
2904 frame_size: usize,
2905 pcm: &mut [f32],
2906 start_band: usize,
2907 end_band: usize,
2908 ) -> usize {
2909 let total_bits = (compressed.len() * 8) as i32;
2910 let mut rc = RangeCoder::new_decoder(compressed);
2911 self.decode_impl_from_rc(&mut rc, total_bits, frame_size, pcm, start_band, end_band)
2912 }
2913
2914 fn decode_impl_from_rc(
2915 &mut self,
2916 rc: &mut RangeCoder,
2917 total_bits: i32,
2918 frame_size: usize,
2919 pcm: &mut [f32],
2920 start_band: usize,
2921 end_band: usize,
2922 ) -> usize {
2923 let mode = self.mode;
2924 let cc = self.channels;
2929 let channels = self.stream_channels.clamp(1, cc);
2930 let nb_ebands = mode.nb_ebands;
2931 let end_band = end_band.min(nb_ebands).max(start_band);
2932 let overlap = mode.overlap;
2933
2934 let mut lm = 0;
2935 while (mode.short_mdct_size << lm) != frame_size {
2936 lm += 1;
2937 if lm > mode.max_lm {
2938 break;
2939 }
2940 }
2941 if (mode.short_mdct_size << lm) != frame_size {
2942 lm = 0;
2943 }
2944
2945 if channels == 1 && cc == 2 {
2951 for i in 0..nb_ebands {
2952 self.old_band_e[i] = self.old_band_e[i].max(self.old_band_e[nb_ebands + i]);
2953 }
2954 }
2955
2956 let tell = rc.tell();
2957 let mut silence = false;
2958 if tell >= total_bits {
2959 silence = true;
2960 } else if tell == 1 {
2961 silence = rc.decode_bit_logp(15);
2962 }
2963 if silence {
2964 rc.nbits_total += total_bits - rc.tell();
2972 }
2973
2974 let mut pf_on = false;
2975 let mut pitch_index = COMBFILTER_MINPERIOD;
2976 let mut gain1 = 0.0f32;
2977 let mut prefilter_tapset = 0;
2978
2979 if start_band == 0 && !silence && rc.tell() + 16 <= total_bits {
2980 pf_on = rc.decode_bit_logp(1);
2981 if pf_on {
2982 let octave = rc.dec_uint(6);
2983 pitch_index = ((16 << octave) + rc.dec_bits(4 + octave)) as usize - 1;
2984 let qg = rc.dec_bits(3);
2985 if rc.tell() + 2 <= total_bits {
2986 prefilter_tapset = rc.decode_icdf(&TAPSET_ICDF, 2) as usize;
2987 }
2988 gain1 = 0.09375 * (qg as f32 + 1.0);
2989 }
2990 }
2991 if start_band != 0 {
2992 self.prefilter_gain = 0.0;
2993 }
2994
2995 let mut is_transient = false;
2996 if lm > 0 && rc.tell() + 3 <= total_bits {
2997 is_transient = rc.decode_bit_logp(3);
2998 }
2999 let short_blocks = is_transient;
3000
3001 let intra_ener = if rc.tell() + 3 <= total_bits {
3002 rc.decode_bit_logp(3)
3003 } else {
3004 false
3005 };
3006
3007 unquant_coarse_energy(
3008 mode,
3009 start_band,
3010 end_band,
3011 &mut self.old_band_e,
3012 intra_ener,
3013 rc,
3014 channels,
3015 lm,
3016 );
3017 self.w_tf_res[..nb_ebands].fill(0);
3018 let tf_res = &mut self.w_tf_res[..nb_ebands];
3019 tf_decode(start_band, end_band, is_transient, tf_res, lm as i32, rc);
3020
3021 let spread_decision = if rc.tell() + 4 <= total_bits {
3022 rc.decode_icdf(&SPREAD_ICDF, 5)
3023 } else {
3024 SPREAD_NORMAL
3025 };
3026
3027 self.w_cap[..nb_ebands].fill(0);
3028 let cap = &mut self.w_cap[..nb_ebands];
3029 for (i, cap_i) in cap.iter_mut().enumerate() {
3030 let n = (mode.e_bands[i + 1] - mode.e_bands[i]) << lm;
3031 *cap_i = ((mode.cache.caps[nb_ebands * (2 * lm + channels - 1) + i] as i32 + 64)
3032 * channels as i32
3033 * n as i32)
3034 >> 2;
3035 }
3036
3037 self.w_offsets[..nb_ebands].fill(0);
3038 let offsets = &mut self.w_offsets[..nb_ebands];
3039 let mut dynalloc_logp = 6i32;
3040 let mut total_bits_bitres = total_bits << BITRES;
3041 let mut tell_frac = rc.tell_frac();
3042 for i in start_band..end_band {
3043 let width =
3044 channels as i32 * (mode.e_bands[i + 1] - mode.e_bands[i]) as i32 * (1 << lm);
3045 let quanta = (width << BITRES).min((6i32 << BITRES).max(width));
3046 let mut dynalloc_loop_logp = dynalloc_logp;
3047 let mut boost = 0i32;
3048 while tell_frac + (dynalloc_loop_logp << BITRES) < total_bits_bitres && boost < cap[i] {
3049 let flag = rc.decode_bit_logp(dynalloc_loop_logp as u32);
3050 tell_frac = rc.tell_frac();
3051 if !flag {
3052 break;
3053 }
3054 boost += quanta;
3055 total_bits_bitres -= quanta;
3056 dynalloc_loop_logp = 1;
3057 }
3058 offsets[i] = boost;
3059 if boost > 0 {
3060 dynalloc_logp = dynalloc_logp.max(2) - 1;
3061 dynalloc_logp = dynalloc_logp.max(2);
3062 }
3063 }
3064
3065 let alloc_trim = if rc.tell_frac() + (6 << BITRES) <= total_bits_bitres {
3066 rc.decode_icdf(&TRIM_ICDF, 7)
3067 } else {
3068 5
3069 };
3070 let anti_collapse_rsv = if is_transient && lm >= 2 {
3071 let remaining = (total_bits << BITRES) - rc.tell_frac() - 1;
3072 if remaining >= ((lm as i32 + 2) << BITRES) {
3073 1i32 << BITRES
3074 } else {
3075 0
3076 }
3077 } else {
3078 0
3079 };
3080
3081 let mut intensity = 0;
3082 let mut dual_stereo_val = if channels == 2 { 1 } else { 0 };
3083 let mut balance = 0;
3084 self.w_pulses[..nb_ebands].fill(0);
3085 let pulses = &mut self.w_pulses[..nb_ebands];
3086
3087 let ebands_stereo = if channels > 1 {
3088 nb_ebands * channels
3089 } else {
3090 nb_ebands
3091 };
3092 self.w_fine_priority[..ebands_stereo].fill(0);
3093 let fine_priority = &mut self.w_fine_priority[..ebands_stereo];
3094 self.w_ebits[..ebands_stereo].fill(0);
3095 let ebits = &mut self.w_ebits[..ebands_stereo];
3096
3097 let alloc_bits = (total_bits << BITRES) - rc.tell_frac() - 1 - anti_collapse_rsv;
3098 let coded_bands = clt_compute_allocation(
3099 mode,
3100 start_band,
3101 end_band,
3102 offsets,
3103 cap,
3104 alloc_trim,
3105 &mut intensity,
3106 &mut dual_stereo_val,
3107 alloc_bits,
3108 &mut balance,
3109 pulses,
3110 ebits,
3111 fine_priority,
3112 channels as i32,
3113 lm as i32,
3114 rc,
3115 false,
3116 0,
3117 end_band as i32 - 1,
3118 );
3119
3120 unquant_fine_energy(
3121 mode,
3122 start_band,
3123 end_band,
3124 &mut self.old_band_e,
3125 ebits,
3126 rc,
3127 channels,
3128 );
3129
3130 if frame_size > DECODE_BUFFER_SIZE + overlap {
3131 return 0;
3132 }
3133
3134 self.w_x[..frame_size * channels].fill(0.0);
3135
3136 let x_pad_end = (frame_size * channels + STRIDE_ACCESS_PAD).min(self.w_x.len());
3137 let x = &mut self.w_x[..x_pad_end];
3138 self.w_collapse_masks[..nb_ebands * channels].fill(0);
3139 let collapse_masks = &mut self.w_collapse_masks[..nb_ebands * channels];
3140
3141 let (x_split, y_split) = x.split_at_mut(frame_size);
3142 let y_opt = if channels == 2 { Some(y_split) } else { None };
3143
3144 let mut dual_stereo = dual_stereo_val != 0;
3145 self.w_band_amp[..nb_ebands * channels].fill(0.0);
3146 let band_amp = &mut self.w_band_amp[..nb_ebands * channels];
3147 log2amp(mode, nb_ebands, band_amp, &self.old_band_e, channels);
3148 quant_all_bands(
3149 false,
3150 mode,
3151 start_band,
3152 end_band,
3153 x_split,
3154 y_opt,
3155 collapse_masks,
3156 band_amp,
3157 pulses,
3158 short_blocks,
3159 spread_decision,
3160 &mut dual_stereo,
3161 intensity as usize,
3162 tf_res,
3163 (total_bits << BITRES) - anti_collapse_rsv,
3164 &mut balance,
3165 rc,
3166 lm as i32,
3167 coded_bands,
3168 true,
3169 false,
3170 &mut self.rng,
3171 );
3172 let mut anti_collapse_on = false;
3174 if anti_collapse_rsv > 0 {
3175 anti_collapse_on = rc.dec_bits(1) != 0;
3176 }
3177
3178 unquant_energy_finalise(
3179 mode,
3180 start_band,
3181 end_band,
3182 &mut self.old_band_e,
3183 ebits,
3184 fine_priority,
3185 total_bits - rc.tell(),
3186 rc,
3187 channels,
3188 );
3189 if anti_collapse_on {
3190 self.rng = crate::bands::anti_collapse(
3194 mode,
3195 x,
3196 collapse_masks,
3197 lm as i32,
3198 channels,
3199 frame_size,
3200 start_band,
3201 end_band,
3202 &self.old_band_e,
3203 &self.old_band_e2,
3204 &self.old_band_e3,
3205 pulses,
3206 self.rng,
3207 );
3208 }
3209
3210 if silence {
3215 for i in 0..channels * nb_ebands {
3216 self.old_band_e[i] = -28.0;
3217 }
3218 }
3219
3220 log2amp(mode, nb_ebands, band_amp, &self.old_band_e, channels);
3223 self.w_freq[..frame_size * channels].fill(0.0);
3224 let freq = &mut self.w_freq[..frame_size * channels];
3225 if !silence {
3226 denormalise_bands(
3227 mode,
3228 x,
3229 freq,
3230 band_amp,
3231 start_band,
3232 end_band,
3233 channels,
3234 (1 << lm) as usize,
3235 );
3236 }
3237 let (shift, b) = if short_blocks {
3240 (mode.max_lm, 1 << lm)
3241 } else {
3242 (mode.max_lm - lm, 1)
3243 };
3244 let n = frame_size / b;
3245
3246 for c in 0..cc {
3247 let fc = c.min(channels - 1);
3253 let channel_mem_offset = c * (DECODE_BUFFER_SIZE + overlap);
3254
3255 let mem_size = DECODE_BUFFER_SIZE + overlap;
3256 self.decode_mem.copy_within(
3257 channel_mem_offset + frame_size..channel_mem_offset + mem_size,
3258 channel_mem_offset,
3259 );
3260
3261 let out_syn_idx = DECODE_BUFFER_SIZE - frame_size;
3262
3263 for i in 0..b {
3264 let block_freq_idx = fc * frame_size + i;
3265 let block_stride = if short_blocks {
3269 mode.short_mdct_size
3270 } else {
3271 n
3272 };
3273 let block_out_idx = channel_mem_offset + out_syn_idx + i * block_stride;
3274 let available_len = self.decode_mem.len() - block_out_idx;
3275 if available_len < n + overlap {
3276 panic!(
3277 "MDCT backward buffer too small: need {}, have {} (out_syn_idx={}, n={}, overlap={})",
3278 n + overlap,
3279 available_len,
3280 out_syn_idx,
3281 n,
3282 overlap
3283 );
3284 }
3285 self.mode.mdct.backward(
3286 &freq[block_freq_idx..],
3287 &mut self.decode_mem[block_out_idx..],
3288 mode.window,
3289 overlap,
3290 shift,
3291 b,
3292 );
3293 }
3294
3295 const SIG_SAT: f32 = 536870911.0;
3296 for i in 0..frame_size {
3297 let v = &mut self.decode_mem[channel_mem_offset + out_syn_idx + i];
3298 *v = v.clamp(-SIG_SAT, SIG_SAT);
3299 }
3300
3301 self.w_pcm_frame[..frame_size].fill(0.0);
3302 let pcm_frame = &mut self.w_pcm_frame[..frame_size];
3303
3304 pcm_frame.copy_from_slice(
3305 &self.decode_mem[channel_mem_offset + out_syn_idx
3306 ..channel_mem_offset + out_syn_idx + frame_size],
3307 );
3308 if pf_on || self.prefilter_gain > 0.0 || self.prefilter_gain_old > 0.0 {
3309 self.w_post[..COMBFILTER_MAXPERIOD].copy_from_slice(
3314 &self.prefilter_mem[c * COMBFILTER_MAXPERIOD..(c + 1) * COMBFILTER_MAXPERIOD],
3315 );
3316 self.w_post[COMBFILTER_MAXPERIOD..COMBFILTER_MAXPERIOD + frame_size]
3317 .copy_from_slice(pcm_frame);
3318
3319 let short_n = mode.short_mdct_size;
3320 comb_filter_inplace(
3323 &mut self.w_post,
3324 COMBFILTER_MAXPERIOD,
3325 self.prefilter_period_old,
3326 self.prefilter_period,
3327 short_n,
3328 self.prefilter_gain_old,
3329 self.prefilter_gain,
3330 self.prefilter_tapset_old,
3331 self.prefilter_tapset,
3332 mode.window,
3333 overlap,
3334 );
3335 if lm != 0 {
3336 comb_filter_inplace(
3338 &mut self.w_post,
3339 COMBFILTER_MAXPERIOD + short_n,
3340 self.prefilter_period,
3341 pitch_index,
3342 frame_size - short_n,
3343 self.prefilter_gain,
3344 gain1,
3345 self.prefilter_tapset,
3346 prefilter_tapset as i32,
3347 mode.window,
3348 overlap,
3349 );
3350 }
3351
3352 pcm_frame.copy_from_slice(
3353 &self.w_post[COMBFILTER_MAXPERIOD..COMBFILTER_MAXPERIOD + frame_size],
3354 );
3355
3356 self.decode_mem[channel_mem_offset + out_syn_idx
3357 ..channel_mem_offset + out_syn_idx + frame_size]
3358 .copy_from_slice(pcm_frame);
3359 }
3360 let mut new_mem = [0.0f32; COMBFILTER_MAXPERIOD];
3361 if frame_size >= COMBFILTER_MAXPERIOD {
3362 new_mem.copy_from_slice(&pcm_frame[frame_size - COMBFILTER_MAXPERIOD..frame_size]);
3363 } else {
3364 new_mem[..COMBFILTER_MAXPERIOD - frame_size].copy_from_slice(
3365 &self.prefilter_mem
3366 [c * COMBFILTER_MAXPERIOD + frame_size..(c + 1) * COMBFILTER_MAXPERIOD],
3367 );
3368 new_mem[COMBFILTER_MAXPERIOD - frame_size..].copy_from_slice(pcm_frame);
3369 }
3370 self.prefilter_mem[c * COMBFILTER_MAXPERIOD..(c + 1) * COMBFILTER_MAXPERIOD]
3371 .copy_from_slice(&new_mem);
3372
3373 let coef = mode.preemph[0];
3374 let mut m = self.preemph_mem[c];
3375 const VERY_SMALL: f32 = 1e-30f32;
3376 for i in 0..frame_size {
3377 let x = pcm_frame[i];
3378 let val = (x + VERY_SMALL + m).clamp(-SIG_SAT, SIG_SAT);
3379 pcm[c * frame_size + i] = val * (1.0 / 32768.0);
3380 m = val * coef;
3381 }
3382 self.preemph_mem[c] = m;
3383 }
3384
3385 self.prefilter_period_old = self.prefilter_period;
3386 self.prefilter_gain_old = self.prefilter_gain;
3387 self.prefilter_tapset_old = self.prefilter_tapset;
3388
3389 if pf_on {
3390 self.prefilter_period = pitch_index;
3391 self.prefilter_gain = gain1;
3392 self.prefilter_tapset = prefilter_tapset as i32;
3393 } else {
3394 self.prefilter_period = COMBFILTER_MINPERIOD;
3395 self.prefilter_gain = 0.0;
3396 self.prefilter_tapset = 0;
3397 }
3398
3399 if lm > 0 {
3400 self.prefilter_period_old = self.prefilter_period;
3401 self.prefilter_gain_old = self.prefilter_gain;
3402 self.prefilter_tapset_old = self.prefilter_tapset;
3403 }
3404
3405 if channels == 1 && cc == 2 {
3410 let (ch0, ch1) = self.old_band_e.split_at_mut(nb_ebands);
3411 ch1[..nb_ebands].copy_from_slice(&ch0[..nb_ebands]);
3412 }
3413
3414 if !is_transient {
3417 self.old_band_e3.copy_from_slice(&self.old_band_e2);
3418 self.old_band_e2.copy_from_slice(&self.old_band_e);
3419 } else {
3420 for i in 0..cc * nb_ebands {
3421 self.old_band_e2[i] = self.old_band_e2[i].min(self.old_band_e[i]);
3422 }
3423 }
3424
3425 for c in 0..cc {
3430 for i in 0..start_band {
3431 self.old_band_e[c * nb_ebands + i] = 0.0;
3432 self.old_band_e2[c * nb_ebands + i] = -28.0;
3433 self.old_band_e3[c * nb_ebands + i] = -28.0;
3434 }
3435 for i in end_band..nb_ebands {
3436 self.old_band_e[c * nb_ebands + i] = 0.0;
3437 self.old_band_e2[c * nb_ebands + i] = -28.0;
3438 self.old_band_e3[c * nb_ebands + i] = -28.0;
3439 }
3440 }
3441
3442 self.rng = rc.rng;
3443 self.loss_count = 0;
3444
3445 frame_size
3446 }
3447
3448 pub fn conceal_lost(&mut self, frame_size: usize, pcm: &mut [f32]) {
3457 let n = frame_size;
3458 if self.loss_count >= 5 {
3460 self.conceal_fill_noise(n);
3461 } else {
3462 self.conceal_fill_pitch(n);
3463 }
3464
3465 let mode = self.mode;
3467 let c = self.channels;
3468 let overlap = mode.overlap;
3469 let mem_size = DECODE_BUFFER_SIZE + overlap;
3470 let out_syn_idx = DECODE_BUFFER_SIZE - n;
3471 const SIG_SAT: f32 = 536870911.0;
3472 const VERY_SMALL: f32 = 1e-30f32;
3473 let coef = mode.preemph[0];
3474 for ch in 0..c {
3475 let out = ch * mem_size + out_syn_idx;
3476 let mut m = self.preemph_mem[ch];
3477 for i in 0..n {
3478 let x = self.decode_mem[out + i];
3479 let val = (x + VERY_SMALL + m).clamp(-SIG_SAT, SIG_SAT);
3480 pcm[i * c + ch] = val * (1.0 / 32768.0);
3481 m = val * coef;
3482 }
3483 self.preemph_mem[ch] = m;
3484 }
3485
3486 self.prefilter_period_old = self.prefilter_period;
3487 self.prefilter_gain_old = self.prefilter_gain;
3488 self.prefilter_period = COMBFILTER_MINPERIOD;
3489 self.prefilter_gain = 0.0;
3490 self.loss_count += 1;
3491 }
3492
3493 fn conceal_fill_noise(&mut self, n: usize) {
3496 let mode = self.mode;
3497 let nb_ebands = mode.nb_ebands;
3498 let overlap = mode.overlap;
3499 let c = self.channels;
3500 let start = 0usize;
3501 let end = nb_ebands;
3502 let eff_end = end.min(mode.eff_ebands);
3503 let mem_size = DECODE_BUFFER_SIZE + overlap;
3504
3505 let mut lm = 0usize;
3506 while (mode.short_mdct_size << lm) != n && lm < mode.max_lm {
3507 lm += 1;
3508 }
3509
3510 let decay = if self.loss_count == 0 { 1.5f32 } else { 0.5f32 };
3511 for ch in 0..c {
3512 for i in start..end {
3513 let e = &mut self.old_band_e[ch * nb_ebands + i];
3514 *e = (*e - decay).max(-28.0);
3515 }
3516 }
3517
3518 let mut seed = self.rng;
3519 self.w_x[..n * c].fill(0.0);
3520 for ch in 0..c {
3521 for i in start..eff_end {
3522 let boffs = n * ch + ((mode.e_bands[i] as usize) << lm);
3523 let blen = ((mode.e_bands[i + 1] - mode.e_bands[i]) as usize) << lm;
3524 for j in 0..blen {
3525 seed = crate::bands::celt_lcg_rand(seed);
3526 self.w_x[boffs + j] = ((seed as i32) >> 20) as f32;
3527 }
3528 crate::bands::renormalise_vector(&mut self.w_x[boffs..boffs + blen], blen, 1.0);
3529 }
3530 }
3531 self.rng = seed;
3532
3533 for ch in 0..c {
3534 let base = ch * mem_size;
3535 self.decode_mem
3536 .copy_within(base + n..base + DECODE_BUFFER_SIZE + overlap / 2, base);
3537 }
3538
3539 self.w_band_amp[..nb_ebands * c].fill(0.0);
3540 let band_amp = &mut self.w_band_amp[..nb_ebands * c];
3541 log2amp(mode, nb_ebands, band_amp, &self.old_band_e, c);
3542 self.w_freq[..n * c].fill(0.0);
3543 let freq = &mut self.w_freq[..n * c];
3544 denormalise_bands(mode, &self.w_x, freq, band_amp, start, end, c, 1usize << lm);
3545
3546 let shift = mode.max_lm - lm;
3547 let out_syn_idx = DECODE_BUFFER_SIZE - n;
3548 const SIG_SAT: f32 = 536870911.0;
3549 for ch in 0..c {
3550 let out = ch * mem_size + out_syn_idx;
3551 self.mode.mdct.backward(
3552 &freq[ch * n..],
3553 &mut self.decode_mem[out..],
3554 mode.window,
3555 overlap,
3556 shift,
3557 1,
3558 );
3559 for i in 0..n {
3560 let v = &mut self.decode_mem[out + i];
3561 *v = v.clamp(-SIG_SAT, SIG_SAT);
3562 }
3563 }
3564 }
3565
3566 fn conceal_fill_pitch(&mut self, n: usize) {
3570 let mode = self.mode;
3571 let overlap = mode.overlap;
3572 let c = self.channels;
3573 let mem_size = DECODE_BUFFER_SIZE + overlap;
3574 const MAX_PERIOD: usize = COMBFILTER_MAXPERIOD;
3575 let ord = PLC_LPC_ORDER;
3576 let out_syn_idx = DECODE_BUFFER_SIZE - n;
3577 const SIG_SAT: f32 = 536870911.0;
3578 let window = mode.window;
3579
3580 let mut fade = 1.0f32;
3582 if self.loss_count == 0 {
3583 let mut lp = vec![0.0f32; DECODE_BUFFER_SIZE >> 1];
3584 let slices: Vec<&[f32]> = (0..c)
3585 .map(|ch| &self.decode_mem[ch * mem_size..ch * mem_size + DECODE_BUFFER_SIZE])
3586 .collect();
3587 crate::pitch::pitch_downsample(&slices, &mut lp, DECODE_BUFFER_SIZE >> 1, c, 2);
3588 let pr = crate::pitch::pitch_search(
3589 &lp[PLC_PITCH_LAG_MAX >> 1..],
3590 &lp,
3591 DECODE_BUFFER_SIZE - PLC_PITCH_LAG_MAX,
3592 PLC_PITCH_LAG_MAX - PLC_PITCH_LAG_MIN,
3593 );
3594 self.last_pitch_index = (PLC_PITCH_LAG_MAX - pr) as i32;
3595 } else {
3596 fade = 0.8;
3597 }
3598 let pitch_index = (self.last_pitch_index.max(1) as usize).min(MAX_PERIOD - 1);
3599 let exc_length = (2 * pitch_index).min(MAX_PERIOD);
3600
3601 let mut etmp = vec![0.0f32; overlap];
3602 for ch in 0..c {
3603 let base = ch * mem_size;
3604 let mut exc_buf = vec![0.0f32; MAX_PERIOD + ord];
3606 for (i, v) in exc_buf.iter_mut().enumerate() {
3607 *v = self.decode_mem[base + DECODE_BUFFER_SIZE - MAX_PERIOD - ord + i];
3608 }
3609 if self.loss_count == 0 {
3610 let mut ac = vec![0.0f32; ord + 1];
3611 crate::celt_lpc::autocorr(
3612 &exc_buf[ord..ord + MAX_PERIOD],
3613 &mut ac,
3614 Some(window),
3615 overlap,
3616 ord,
3617 MAX_PERIOD,
3618 );
3619 ac[0] *= 1.0001; for i in 1..=ord {
3621 ac[i] -= ac[i] * (0.008 * 0.008) * (i * i) as f32; }
3623 let mut lc = vec![0.0f32; ord];
3624 crate::celt_lpc::lpc(&mut lc, &ac, ord);
3625 self.plc_lpc[ch * ord..ch * ord + ord].copy_from_slice(&lc);
3626 }
3627 let lc: Vec<f32> = self.plc_lpc[ch * ord..ch * ord + ord].to_vec();
3628
3629 {
3632 let x = &exc_buf[MAX_PERIOD - exc_length..];
3633 let mut y = vec![0.0f32; ord + exc_length];
3634 crate::celt_lpc::celt_fir(x, &lc, &mut y, ord + exc_length, ord);
3635 for i in 0..exc_length {
3636 exc_buf[ord + MAX_PERIOD - exc_length + i] = y[ord + i];
3637 }
3638 }
3639
3640 let decay_length = exc_length >> 1;
3642 let mut e1 = 1.0f32;
3643 let mut e2 = 1.0f32;
3644 for i in 0..decay_length {
3645 let a = exc_buf[ord + MAX_PERIOD - decay_length + i];
3646 e1 += a * a;
3647 let b = exc_buf[ord + MAX_PERIOD - 2 * decay_length + i];
3648 e2 += b * b;
3649 }
3650 e1 = e1.min(e2);
3651 let decay = (e1 / e2).sqrt();
3652
3653 self.decode_mem
3655 .copy_within(base + n..base + DECODE_BUFFER_SIZE, base);
3656
3657 let extrapolation_offset = MAX_PERIOD - pitch_index;
3659 let extrapolation_len = n + overlap;
3660 let mut atten = fade * decay;
3661 let mut j = 0usize;
3662 let mut s1 = 0.0f32;
3663 for i in 0..extrapolation_len {
3664 if j >= pitch_index {
3665 j -= pitch_index;
3666 atten *= decay;
3667 }
3668 self.decode_mem[base + out_syn_idx + i] =
3669 atten * exc_buf[ord + extrapolation_offset + j];
3670 let tmp = self.decode_mem
3671 [base + (DECODE_BUFFER_SIZE - MAX_PERIOD - n) + extrapolation_offset + j];
3672 s1 += tmp * tmp;
3673 j += 1;
3674 }
3675
3676 let mut lpc_mem = [0.0f32; PLC_LPC_ORDER];
3678 for (i, v) in lpc_mem.iter_mut().enumerate().take(ord) {
3679 *v = self.decode_mem[base + DECODE_BUFFER_SIZE - n - 1 - i];
3680 }
3681 let extrap: Vec<f32> = self.decode_mem
3682 [base + out_syn_idx..base + out_syn_idx + extrapolation_len]
3683 .to_vec();
3684 crate::celt_lpc::celt_iir(
3685 &extrap,
3686 &lc,
3687 &mut self.decode_mem[base + out_syn_idx..base + out_syn_idx + extrapolation_len],
3688 extrapolation_len,
3689 ord,
3690 &mut lpc_mem[..ord],
3691 );
3692 for i in 0..extrapolation_len {
3693 let v = &mut self.decode_mem[base + out_syn_idx + i];
3694 *v = v.clamp(-SIG_SAT, SIG_SAT);
3695 }
3696
3697 let mut s2 = 0.0f32;
3699 for i in 0..extrapolation_len {
3700 let t = self.decode_mem[base + out_syn_idx + i];
3701 s2 += t * t;
3702 }
3703 if !(s1 > 0.2 * s2) {
3704 for i in 0..extrapolation_len {
3705 self.decode_mem[base + out_syn_idx + i] = 0.0;
3706 }
3707 } else if s1 < s2 {
3708 let ratio = ((s1 + 1.0) / (s2 + 1.0)).sqrt();
3709 for i in 0..overlap {
3710 let g = 1.0 - window[i] * (1.0 - ratio);
3711 self.decode_mem[base + out_syn_idx + i] *= g;
3712 }
3713 for i in overlap..extrapolation_len {
3714 self.decode_mem[base + out_syn_idx + i] *= ratio;
3715 }
3716 }
3717
3718 comb_filter(
3721 &mut etmp,
3722 &self.decode_mem,
3723 0,
3724 base + DECODE_BUFFER_SIZE,
3725 self.prefilter_period,
3726 self.prefilter_period,
3727 overlap,
3728 -self.prefilter_gain,
3729 -self.prefilter_gain,
3730 self.prefilter_tapset,
3731 self.prefilter_tapset,
3732 window,
3733 0,
3734 );
3735 for i in 0..overlap / 2 {
3736 self.decode_mem[base + DECODE_BUFFER_SIZE + i] =
3737 window[i] * etmp[overlap - 1 - i] + window[overlap - 1 - i] * etmp[i];
3738 }
3739 }
3740 }
3741}
3742
3743#[cfg(test)]
3744mod tests {
3745 use super::*;
3746 use crate::{modes, range_coder::RangeCoder};
3747
3748 #[test]
3766 #[should_panic]
3767 fn test_celt_frame_size_48_panics_confirms_crash_path() {
3768 let mode = modes::default_mode();
3769 let mut enc = CeltEncoder::new(mode, 1);
3770 let pcm = vec![0.0f32; 48 + mode.overlap]; let mut rc = RangeCoder::new_encoder(100);
3775 enc.encode_with_budget(&pcm, 48, &mut rc, 0, 21, 800);
3776 }
3777
3778 #[test]
3785 fn prefilter_postfilter_inversion() {
3786 let mode = modes::default_mode();
3787 let n = 960usize;
3788 let overlap = mode.overlap; let short_n = mode.short_mdct_size; let frames = 100usize;
3791 let max_period = COMBFILTER_MAXPERIOD;
3792
3793 let total = frames * n;
3796 let mut x = vec![0.0f32; total];
3797 let mut rng = 0x12345678u32;
3798 let mut next = || {
3799 rng = rng.wrapping_mul(1664525).wrapping_add(1013904223);
3800 (rng >> 8) as f32 / (1 << 24) as f32 - 0.5
3801 };
3802 for (t, v) in x.iter_mut().enumerate() {
3803 let seg = t / (n * 10);
3804 let phase = t as f32;
3805 *v = match seg % 4 {
3806 0 => (phase * std::f32::consts::TAU / 147.0).sin() * 8000.0, 1 => next() * 6000.0,
3808 2 => {
3809 ((phase * std::f32::consts::TAU / 89.0).sin()
3810 + 0.5 * (phase * std::f32::consts::TAU / 44.5).sin())
3811 * 7000.0
3812 }
3813 _ => (phase * std::f32::consts::TAU / 480.0).sin() * 5000.0, };
3815 }
3816
3817 let mut pre = vec![0.0f32; max_period + n];
3819 let mut pitch_buf = vec![0.0f32; (max_period + n) >> 1];
3820 let mut prefilter_mem = vec![0.0f32; max_period];
3821 let mut in_mem = vec![0.0f32; overlap];
3822 let (mut prev_t, mut prev_g) = (COMBFILTER_MINPERIOD, 0.0f32);
3823 let analysis = AnalysisInfo::default();
3824 let mut filtered = vec![0.0f32; total];
3825 let mut params = Vec::new(); let mut in_buf = vec![0.0f32; n + overlap];
3827 for k in 0..frames {
3828 in_buf[..overlap].copy_from_slice(&in_mem);
3829 in_buf[overlap..].copy_from_slice(&x[k * n..(k + 1) * n]);
3830 let (pf_on, g1, t1) = run_prefilter(
3831 &mut in_buf,
3832 &mut prefilter_mem,
3833 prev_t,
3834 prev_g,
3835 0, 0, mode.window,
3838 1,
3839 n,
3840 overlap,
3841 &mut pre,
3842 &mut pitch_buf,
3843 &analysis,
3844 0,
3845 159,
3846 );
3847 filtered[k * n..(k + 1) * n].copy_from_slice(&in_buf[overlap..]);
3848 in_mem.copy_from_slice(&in_buf[n..]);
3849 params.push((pf_on, t1, g1));
3850 prev_t = if pf_on { t1 } else { COMBFILTER_MINPERIOD };
3852 prev_g = if pf_on { g1 } else { 0.0 };
3853 }
3854
3855 let mut delayed = vec![0.0f32; total];
3857 delayed[short_n..].copy_from_slice(&filtered[..total - short_n]);
3858 let mut w = vec![0.0f32; max_period + n];
3859 let mut post_mem = vec![0.0f32; max_period];
3860 let (mut d_t_old, mut d_g_old) = (COMBFILTER_MINPERIOD, 0.0f32);
3861 let (mut d_t, mut d_g) = (COMBFILTER_MINPERIOD, 0.0f32);
3862 let mut out = vec![0.0f32; total];
3863 for k in 0..frames {
3864 let (pf_on, sig_t, sig_g) = params[k];
3865 let (gain1, pitch_index) = if pf_on {
3866 (sig_g, sig_t)
3867 } else {
3868 (0.0, COMBFILTER_MINPERIOD)
3869 };
3870 w[..max_period].copy_from_slice(&post_mem);
3871 w[max_period..].copy_from_slice(&delayed[k * n..(k + 1) * n]);
3872 if pf_on || d_g > 0.0 || d_g_old > 0.0 {
3873 comb_filter_inplace(
3874 &mut w, max_period, d_t_old, d_t, short_n, d_g_old, d_g, 0, 0, mode.window,
3875 overlap,
3876 );
3877 comb_filter_inplace(
3878 &mut w,
3879 max_period + short_n,
3880 d_t,
3881 pitch_index,
3882 n - short_n,
3883 d_g,
3884 gain1,
3885 0,
3886 0,
3887 mode.window,
3888 overlap,
3889 );
3890 }
3891 out[k * n..(k + 1) * n].copy_from_slice(&w[max_period..]);
3892 post_mem.copy_from_slice(&w[n..]);
3893 if pf_on {
3895 d_t = pitch_index;
3896 d_g = gain1;
3897 } else {
3898 d_t = COMBFILTER_MINPERIOD;
3899 d_g = 0.0;
3900 }
3901 d_t_old = d_t;
3902 d_g_old = d_g;
3903 }
3904
3905 let m = total - 2 * n;
3907 let mut se = 0.0f64;
3908 let mut sx = 0.0f64;
3909 for t in n..m {
3910 let e = (out[t + short_n] - x[t]) as f64;
3911 se += e * e;
3912 sx += (x[t] as f64) * (x[t] as f64);
3913 }
3914 let snr = 10.0 * (sx / se.max(1e-30)).log10();
3915 let engaged = params.iter().filter(|p| p.0).count();
3916 assert!(
3917 engaged > frames / 4,
3918 "prefilter never engaged ({engaged}/{frames}) — test signal too weak"
3919 );
3920 assert!(
3921 snr > 90.0,
3922 "prefilter/postfilter round trip not transparent: SNR={snr:.1} dB (engaged {engaged}/{frames})"
3923 );
3924 }
3925}