blob: 9597e9523cac4d7459e1869f69a49f1c80a73b24 [file] [log] [blame]
David Rowe10602db2008-10-06 21:41:46 -07001/*
2 * SpanDSP - a series of DSP components for telephony
3 *
4 * echo.c - A line echo canceller. This code is being developed
5 * against and partially complies with G168.
6 *
7 * Written by Steve Underwood <steveu@coppice.org>
8 * and David Rowe <david_at_rowetel_dot_com>
9 *
10 * Copyright (C) 2001, 2003 Steve Underwood, 2007 David Rowe
11 *
12 * Based on a bit from here, a bit from there, eye of toad, ear of
13 * bat, 15 years of failed attempts by David and a few fried brain
14 * cells.
15 *
16 * All rights reserved.
17 *
18 * This program is free software; you can redistribute it and/or modify
19 * it under the terms of the GNU General Public License version 2, as
20 * published by the Free Software Foundation.
21 *
22 * This program is distributed in the hope that it will be useful,
23 * but WITHOUT ANY WARRANTY; without even the implied warranty of
24 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
25 * GNU General Public License for more details.
26 *
27 * You should have received a copy of the GNU General Public License
28 * along with this program; if not, write to the Free Software
29 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
David Rowe10602db2008-10-06 21:41:46 -070030 */
31
32/*! \file */
33
34/* Implementation Notes
35 David Rowe
36 April 2007
37
38 This code started life as Steve's NLMS algorithm with a tap
39 rotation algorithm to handle divergence during double talk. I
40 added a Geigel Double Talk Detector (DTD) [2] and performed some
41 G168 tests. However I had trouble meeting the G168 requirements,
42 especially for double talk - there were always cases where my DTD
43 failed, for example where near end speech was under the 6dB
44 threshold required for declaring double talk.
45
46 So I tried a two path algorithm [1], which has so far given better
47 results. The original tap rotation/Geigel algorithm is available
48 in SVN http://svn.rowetel.com/software/oslec/tags/before_16bit.
49 It's probably possible to make it work if some one wants to put some
50 serious work into it.
51
52 At present no special treatment is provided for tones, which
53 generally cause NLMS algorithms to diverge. Initial runs of a
54 subset of the G168 tests for tones (e.g ./echo_test 6) show the
55 current algorithm is passing OK, which is kind of surprising. The
56 full set of tests needs to be performed to confirm this result.
57
58 One other interesting change is that I have managed to get the NLMS
59 code to work with 16 bit coefficients, rather than the original 32
60 bit coefficents. This reduces the MIPs and storage required.
61 I evaulated the 16 bit port using g168_tests.sh and listening tests
62 on 4 real-world samples.
63
64 I also attempted the implementation of a block based NLMS update
65 [2] but although this passes g168_tests.sh it didn't converge well
66 on the real-world samples. I have no idea why, perhaps a scaling
67 problem. The block based code is also available in SVN
68 http://svn.rowetel.com/software/oslec/tags/before_16bit. If this
69 code can be debugged, it will lead to further reduction in MIPS, as
70 the block update code maps nicely onto DSP instruction sets (it's a
71 dot product) compared to the current sample-by-sample update.
72
73 Steve also has some nice notes on echo cancellers in echo.h
74
David Rowe10602db2008-10-06 21:41:46 -070075 References:
76
77 [1] Ochiai, Areseki, and Ogihara, "Echo Canceller with Two Echo
78 Path Models", IEEE Transactions on communications, COM-25,
79 No. 6, June
80 1977.
81 http://www.rowetel.com/images/echo/dual_path_paper.pdf
82
83 [2] The classic, very useful paper that tells you how to
84 actually build a real world echo canceller:
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -070085 Messerschmitt, Hedberg, Cole, Haoui, Winship, "Digital Voice
86 Echo Canceller with a TMS320020,
87 http://www.rowetel.com/images/echo/spra129.pdf
David Rowe10602db2008-10-06 21:41:46 -070088
89 [3] I have written a series of blog posts on this work, here is
90 Part 1: http://www.rowetel.com/blog/?p=18
91
92 [4] The source code http://svn.rowetel.com/software/oslec/
93
94 [5] A nice reference on LMS filters:
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -070095 http://en.wikipedia.org/wiki/Least_mean_squares_filter
David Rowe10602db2008-10-06 21:41:46 -070096
97 Credits:
98
99 Thanks to Steve Underwood, Jean-Marc Valin, and Ramakrishnan
100 Muthukrishnan for their suggestions and email discussions. Thanks
101 also to those people who collected echo samples for me such as
102 Mark, Pawel, and Pavel.
103*/
104
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700105#include <linux/kernel.h>
David Rowe10602db2008-10-06 21:41:46 -0700106#include <linux/module.h>
David Rowe10602db2008-10-06 21:41:46 -0700107#include <linux/slab.h>
David Rowe10602db2008-10-06 21:41:46 -0700108
David Rowe10602db2008-10-06 21:41:46 -0700109#include "echo.h"
110
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700111#define MIN_TX_POWER_FOR_ADAPTION 64
112#define MIN_RX_POWER_FOR_ADAPTION 64
113#define DTD_HANGOVER 600 /* 600 samples, or 75ms */
114#define DC_LOG2BETA 3 /* log2() of DC filter Beta */
David Rowe10602db2008-10-06 21:41:46 -0700115
David Rowe10602db2008-10-06 21:41:46 -0700116/* adapting coeffs using the traditional stochastic descent (N)LMS algorithm */
117
Tzafrir Cohenf55ccbf2008-10-12 08:13:21 +0200118#ifdef __bfin__
Rahul Tank7a9aea52011-05-14 11:31:42 +0530119static inline void lms_adapt_bg(struct oslec_state *ec, int clean, int shift)
David Rowe10602db2008-10-06 21:41:46 -0700120{
Jesper Juhl3ec50be2012-06-27 22:28:55 +0200121 int i;
J.R. Mauro4460a862008-10-20 19:01:31 -0400122 int offset1;
123 int offset2;
124 int factor;
125 int exp;
126 int16_t *phist;
127 int n;
David Rowe10602db2008-10-06 21:41:46 -0700128
J.R. Mauro4460a862008-10-20 19:01:31 -0400129 if (shift > 0)
130 factor = clean << shift;
131 else
132 factor = clean >> -shift;
David Rowe10602db2008-10-06 21:41:46 -0700133
J.R. Mauro4460a862008-10-20 19:01:31 -0400134 /* Update the FIR taps */
David Rowe10602db2008-10-06 21:41:46 -0700135
J.R. Mauro4460a862008-10-20 19:01:31 -0400136 offset2 = ec->curr_pos;
137 offset1 = ec->taps - offset2;
138 phist = &ec->fir_state_bg.history[offset2];
David Rowe10602db2008-10-06 21:41:46 -0700139
J.R. Mauro4460a862008-10-20 19:01:31 -0400140 /* st: and en: help us locate the assembler in echo.s */
David Rowe10602db2008-10-06 21:41:46 -0700141
Alexander Beregalovdc57a3e2009-03-12 03:32:45 +0300142 /* asm("st:"); */
J.R. Mauro4460a862008-10-20 19:01:31 -0400143 n = ec->taps;
Cong Dingc020a7a2012-12-04 01:21:44 +0000144 for (i = 0; i < n; i++) {
J.R. Mauro4460a862008-10-20 19:01:31 -0400145 exp = *phist++ * factor;
146 ec->fir_taps16[1][i] += (int16_t) ((exp + (1 << 14)) >> 15);
147 }
Alexander Beregalovdc57a3e2009-03-12 03:32:45 +0300148 /* asm("en:"); */
David Rowe10602db2008-10-06 21:41:46 -0700149
J.R. Mauro4460a862008-10-20 19:01:31 -0400150 /* Note the asm for the inner loop above generated by Blackfin gcc
151 4.1.1 is pretty good (note even parallel instructions used):
David Rowe10602db2008-10-06 21:41:46 -0700152
J.R. Mauro4460a862008-10-20 19:01:31 -0400153 R0 = W [P0++] (X);
154 R0 *= R2;
155 R0 = R0 + R3 (NS) ||
156 R1 = W [P1] (X) ||
157 nop;
158 R0 >>>= 15;
159 R0 = R0 + R1;
160 W [P1++] = R0;
David Rowe10602db2008-10-06 21:41:46 -0700161
J.R. Mauro4460a862008-10-20 19:01:31 -0400162 A block based update algorithm would be much faster but the
163 above can't be improved on much. Every instruction saved in
164 the loop above is 2 MIPs/ch! The for loop above is where the
165 Blackfin spends most of it's time - about 17 MIPs/ch measured
166 with speedtest.c with 256 taps (32ms). Write-back and
167 Write-through cache gave about the same performance.
168 */
David Rowe10602db2008-10-06 21:41:46 -0700169}
170
171/*
172 IDEAS for further optimisation of lms_adapt_bg():
173
174 1/ The rounding is quite costly. Could we keep as 32 bit coeffs
175 then make filter pluck the MS 16-bits of the coeffs when filtering?
176 However this would lower potential optimisation of filter, as I
177 think the dual-MAC architecture requires packed 16 bit coeffs.
178
179 2/ Block based update would be more efficient, as per comments above,
180 could use dual MAC architecture.
181
182 3/ Look for same sample Blackfin LMS code, see if we can get dual-MAC
183 packing.
184
185 4/ Execute the whole e/c in a block of say 20ms rather than sample
186 by sample. Processing a few samples every ms is inefficient.
187*/
188
189#else
Rahul Tank7a9aea52011-05-14 11:31:42 +0530190static inline void lms_adapt_bg(struct oslec_state *ec, int clean, int shift)
David Rowe10602db2008-10-06 21:41:46 -0700191{
J.R. Mauro4460a862008-10-20 19:01:31 -0400192 int i;
David Rowe10602db2008-10-06 21:41:46 -0700193
J.R. Mauro4460a862008-10-20 19:01:31 -0400194 int offset1;
195 int offset2;
196 int factor;
197 int exp;
David Rowe10602db2008-10-06 21:41:46 -0700198
J.R. Mauro4460a862008-10-20 19:01:31 -0400199 if (shift > 0)
200 factor = clean << shift;
201 else
202 factor = clean >> -shift;
David Rowe10602db2008-10-06 21:41:46 -0700203
J.R. Mauro4460a862008-10-20 19:01:31 -0400204 /* Update the FIR taps */
David Rowe10602db2008-10-06 21:41:46 -0700205
J.R. Mauro4460a862008-10-20 19:01:31 -0400206 offset2 = ec->curr_pos;
207 offset1 = ec->taps - offset2;
David Rowe10602db2008-10-06 21:41:46 -0700208
J.R. Mauro4460a862008-10-20 19:01:31 -0400209 for (i = ec->taps - 1; i >= offset1; i--) {
210 exp = (ec->fir_state_bg.history[i - offset1] * factor);
211 ec->fir_taps16[1][i] += (int16_t) ((exp + (1 << 14)) >> 15);
212 }
213 for (; i >= 0; i--) {
214 exp = (ec->fir_state_bg.history[i + offset2] * factor);
215 ec->fir_taps16[1][i] += (int16_t) ((exp + (1 << 14)) >> 15);
216 }
David Rowe10602db2008-10-06 21:41:46 -0700217}
218#endif
219
Greg Kroah-Hartman56791f02009-08-25 22:07:56 -0700220static inline int top_bit(unsigned int bits)
David Rowe196e76e2009-08-23 10:57:53 +0930221{
222 if (bits == 0)
Greg Kroah-Hartman56791f02009-08-25 22:07:56 -0700223 return -1;
224 else
Rahul Tank7a9aea52011-05-14 11:31:42 +0530225 return (int)fls((int32_t) bits) - 1;
David Rowe196e76e2009-08-23 10:57:53 +0930226}
227
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200228struct oslec_state *oslec_create(int len, int adaption_mode)
David Rowe10602db2008-10-06 21:41:46 -0700229{
J.R. Mauro4460a862008-10-20 19:01:31 -0400230 struct oslec_state *ec;
231 int i;
Cong Ding09024682012-12-22 17:12:26 +0100232 const int16_t *history;
David Rowe10602db2008-10-06 21:41:46 -0700233
J.R. Mauro4460a862008-10-20 19:01:31 -0400234 ec = kzalloc(sizeof(*ec), GFP_KERNEL);
235 if (!ec)
236 return NULL;
David Rowe10602db2008-10-06 21:41:46 -0700237
J.R. Mauro4460a862008-10-20 19:01:31 -0400238 ec->taps = len;
239 ec->log2taps = top_bit(len);
240 ec->curr_pos = ec->taps - 1;
David Rowe10602db2008-10-06 21:41:46 -0700241
Cong Ding09024682012-12-22 17:12:26 +0100242 ec->fir_taps16[0] =
243 kcalloc(ec->taps, sizeof(int16_t), GFP_KERNEL);
244 if (!ec->fir_taps16[0])
245 goto error_oom_0;
David Rowe10602db2008-10-06 21:41:46 -0700246
Cong Ding09024682012-12-22 17:12:26 +0100247 ec->fir_taps16[1] =
248 kcalloc(ec->taps, sizeof(int16_t), GFP_KERNEL);
249 if (!ec->fir_taps16[1])
250 goto error_oom_1;
251
252 history = fir16_create(&ec->fir_state, ec->fir_taps16[0], ec->taps);
253 if (!history)
254 goto error_state;
255 history = fir16_create(&ec->fir_state_bg, ec->fir_taps16[1], ec->taps);
256 if (!history)
257 goto error_state_bg;
David Rowe10602db2008-10-06 21:41:46 -0700258
Alexander Beregalovdc57a3e2009-03-12 03:32:45 +0300259 for (i = 0; i < 5; i++)
J.R. Mauro4460a862008-10-20 19:01:31 -0400260 ec->xvtx[i] = ec->yvtx[i] = ec->xvrx[i] = ec->yvrx[i] = 0;
David Rowe10602db2008-10-06 21:41:46 -0700261
J.R. Mauro4460a862008-10-20 19:01:31 -0400262 ec->cng_level = 1000;
263 oslec_adaption_mode(ec, adaption_mode);
David Rowe10602db2008-10-06 21:41:46 -0700264
J.R. Mauro4460a862008-10-20 19:01:31 -0400265 ec->snapshot = kcalloc(ec->taps, sizeof(int16_t), GFP_KERNEL);
266 if (!ec->snapshot)
Cong Ding09024682012-12-22 17:12:26 +0100267 goto error_snap;
David Rowe10602db2008-10-06 21:41:46 -0700268
J.R. Mauro4460a862008-10-20 19:01:31 -0400269 ec->cond_met = 0;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700270 ec->pstates = 0;
271 ec->ltxacc = ec->lrxacc = ec->lcleanacc = ec->lclean_bgacc = 0;
272 ec->ltx = ec->lrx = ec->lclean = ec->lclean_bg = 0;
J.R. Mauro4460a862008-10-20 19:01:31 -0400273 ec->tx_1 = ec->tx_2 = ec->rx_1 = ec->rx_2 = 0;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700274 ec->lbgn = ec->lbgn_acc = 0;
275 ec->lbgn_upper = 200;
276 ec->lbgn_upper_acc = ec->lbgn_upper << 13;
David Rowe10602db2008-10-06 21:41:46 -0700277
J.R. Mauro4460a862008-10-20 19:01:31 -0400278 return ec;
Pekka Enbergdb2af142008-10-17 20:55:03 +0300279
Cong Ding09024682012-12-22 17:12:26 +0100280error_snap:
281 fir16_free(&ec->fir_state_bg);
282error_state_bg:
283 fir16_free(&ec->fir_state);
284error_state:
285 kfree(ec->fir_taps16[1]);
286error_oom_1:
287 kfree(ec->fir_taps16[0]);
288error_oom_0:
J.R. Mauro4460a862008-10-20 19:01:31 -0400289 kfree(ec);
290 return NULL;
David Rowe10602db2008-10-06 21:41:46 -0700291}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200292EXPORT_SYMBOL_GPL(oslec_create);
David Rowe10602db2008-10-06 21:41:46 -0700293
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200294void oslec_free(struct oslec_state *ec)
David Rowe10602db2008-10-06 21:41:46 -0700295{
296 int i;
297
298 fir16_free(&ec->fir_state);
299 fir16_free(&ec->fir_state_bg);
J.R. Mauro4460a862008-10-20 19:01:31 -0400300 for (i = 0; i < 2; i++)
David Rowe10602db2008-10-06 21:41:46 -0700301 kfree(ec->fir_taps16[i]);
302 kfree(ec->snapshot);
303 kfree(ec);
304}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200305EXPORT_SYMBOL_GPL(oslec_free);
David Rowe10602db2008-10-06 21:41:46 -0700306
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200307void oslec_adaption_mode(struct oslec_state *ec, int adaption_mode)
David Rowe10602db2008-10-06 21:41:46 -0700308{
J.R. Mauro4460a862008-10-20 19:01:31 -0400309 ec->adaption_mode = adaption_mode;
David Rowe10602db2008-10-06 21:41:46 -0700310}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200311EXPORT_SYMBOL_GPL(oslec_adaption_mode);
David Rowe10602db2008-10-06 21:41:46 -0700312
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200313void oslec_flush(struct oslec_state *ec)
David Rowe10602db2008-10-06 21:41:46 -0700314{
J.R. Mauro4460a862008-10-20 19:01:31 -0400315 int i;
David Rowe10602db2008-10-06 21:41:46 -0700316
Lisa Nguyen0c474822013-05-05 23:38:24 -0700317 ec->ltxacc = ec->lrxacc = ec->lcleanacc = ec->lclean_bgacc = 0;
318 ec->ltx = ec->lrx = ec->lclean = ec->lclean_bg = 0;
J.R. Mauro4460a862008-10-20 19:01:31 -0400319 ec->tx_1 = ec->tx_2 = ec->rx_1 = ec->rx_2 = 0;
David Rowe10602db2008-10-06 21:41:46 -0700320
Lisa Nguyen0c474822013-05-05 23:38:24 -0700321 ec->lbgn = ec->lbgn_acc = 0;
322 ec->lbgn_upper = 200;
323 ec->lbgn_upper_acc = ec->lbgn_upper << 13;
David Rowe10602db2008-10-06 21:41:46 -0700324
J.R. Mauro4460a862008-10-20 19:01:31 -0400325 ec->nonupdate_dwell = 0;
David Rowe10602db2008-10-06 21:41:46 -0700326
J.R. Mauro4460a862008-10-20 19:01:31 -0400327 fir16_flush(&ec->fir_state);
328 fir16_flush(&ec->fir_state_bg);
329 ec->fir_state.curr_pos = ec->taps - 1;
330 ec->fir_state_bg.curr_pos = ec->taps - 1;
331 for (i = 0; i < 2; i++)
332 memset(ec->fir_taps16[i], 0, ec->taps * sizeof(int16_t));
David Rowe10602db2008-10-06 21:41:46 -0700333
J.R. Mauro4460a862008-10-20 19:01:31 -0400334 ec->curr_pos = ec->taps - 1;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700335 ec->pstates = 0;
David Rowe10602db2008-10-06 21:41:46 -0700336}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200337EXPORT_SYMBOL_GPL(oslec_flush);
David Rowe10602db2008-10-06 21:41:46 -0700338
J.R. Mauro4460a862008-10-20 19:01:31 -0400339void oslec_snapshot(struct oslec_state *ec)
340{
341 memcpy(ec->snapshot, ec->fir_taps16[0], ec->taps * sizeof(int16_t));
David Rowe10602db2008-10-06 21:41:46 -0700342}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200343EXPORT_SYMBOL_GPL(oslec_snapshot);
David Rowe10602db2008-10-06 21:41:46 -0700344
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700345/* Dual Path Echo Canceller */
David Rowe10602db2008-10-06 21:41:46 -0700346
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200347int16_t oslec_update(struct oslec_state *ec, int16_t tx, int16_t rx)
David Rowe10602db2008-10-06 21:41:46 -0700348{
J.R. Mauro4460a862008-10-20 19:01:31 -0400349 int32_t echo_value;
350 int clean_bg;
Jesper Juhl3ec50be2012-06-27 22:28:55 +0200351 int tmp;
352 int tmp1;
David Rowe10602db2008-10-06 21:41:46 -0700353
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700354 /*
355 * Input scaling was found be required to prevent problems when tx
356 * starts clipping. Another possible way to handle this would be the
357 * filter coefficent scaling.
358 */
David Rowe10602db2008-10-06 21:41:46 -0700359
J.R. Mauro4460a862008-10-20 19:01:31 -0400360 ec->tx = tx;
361 ec->rx = rx;
362 tx >>= 1;
363 rx >>= 1;
David Rowe10602db2008-10-06 21:41:46 -0700364
J.R. Mauro4460a862008-10-20 19:01:31 -0400365 /*
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700366 * Filter DC, 3dB point is 160Hz (I think), note 32 bit precision
367 * required otherwise values do not track down to 0. Zero at DC, Pole
David Rowe196e76e2009-08-23 10:57:53 +0930368 * at (1-Beta) on real axis. Some chip sets (like Si labs) don't
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700369 * need this, but something like a $10 X100P card does. Any DC really
370 * slows down convergence.
371 *
372 * Note: removes some low frequency from the signal, this reduces the
373 * speech quality when listening to samples through headphones but may
374 * not be obvious through a telephone handset.
375 *
376 * Note that the 3dB frequency in radians is approx Beta, e.g. for Beta
377 * = 2^(-3) = 0.125, 3dB freq is 0.125 rads = 159Hz.
J.R. Mauro4460a862008-10-20 19:01:31 -0400378 */
David Rowe10602db2008-10-06 21:41:46 -0700379
J.R. Mauro4460a862008-10-20 19:01:31 -0400380 if (ec->adaption_mode & ECHO_CAN_USE_RX_HPF) {
381 tmp = rx << 15;
David Rowe196e76e2009-08-23 10:57:53 +0930382
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700383 /*
384 * Make sure the gain of the HPF is 1.0. This can still
385 * saturate a little under impulse conditions, and it might
386 * roll to 32768 and need clipping on sustained peak level
387 * signals. However, the scale of such clipping is small, and
388 * the error due to any saturation should not markedly affect
389 * the downstream processing.
390 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400391 tmp -= (tmp >> 4);
David Rowe196e76e2009-08-23 10:57:53 +0930392
J.R. Mauro4460a862008-10-20 19:01:31 -0400393 ec->rx_1 += -(ec->rx_1 >> DC_LOG2BETA) + tmp - ec->rx_2;
David Rowe10602db2008-10-06 21:41:46 -0700394
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700395 /*
396 * hard limit filter to prevent clipping. Note that at this
397 * stage rx should be limited to +/- 16383 due to right shift
398 * above
399 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400400 tmp1 = ec->rx_1 >> 15;
401 if (tmp1 > 16383)
402 tmp1 = 16383;
403 if (tmp1 < -16383)
404 tmp1 = -16383;
405 rx = tmp1;
406 ec->rx_2 = tmp;
David Rowe10602db2008-10-06 21:41:46 -0700407 }
David Rowe10602db2008-10-06 21:41:46 -0700408
J.R. Mauro4460a862008-10-20 19:01:31 -0400409 /* Block average of power in the filter states. Used for
410 adaption power calculation. */
David Rowe10602db2008-10-06 21:41:46 -0700411
David Rowe10602db2008-10-06 21:41:46 -0700412 {
J.R. Mauro4460a862008-10-20 19:01:31 -0400413 int new, old;
David Rowe10602db2008-10-06 21:41:46 -0700414
J.R. Mauro4460a862008-10-20 19:01:31 -0400415 /* efficient "out with the old and in with the new" algorithm so
416 we don't have to recalculate over the whole block of
417 samples. */
Chris Forbes30c50072011-07-01 21:55:38 +1200418 new = (int)tx * (int)tx;
J.R. Mauro4460a862008-10-20 19:01:31 -0400419 old = (int)ec->fir_state.history[ec->fir_state.curr_pos] *
420 (int)ec->fir_state.history[ec->fir_state.curr_pos];
Lisa Nguyen0c474822013-05-05 23:38:24 -0700421 ec->pstates +=
Rahul Tank7a9aea52011-05-14 11:31:42 +0530422 ((new - old) + (1 << (ec->log2taps - 1))) >> ec->log2taps;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700423 if (ec->pstates < 0)
424 ec->pstates = 0;
David Rowe10602db2008-10-06 21:41:46 -0700425 }
David Rowe10602db2008-10-06 21:41:46 -0700426
J.R. Mauro4460a862008-10-20 19:01:31 -0400427 /* Calculate short term average levels using simple single pole IIRs */
David Rowe10602db2008-10-06 21:41:46 -0700428
Lisa Nguyen0c474822013-05-05 23:38:24 -0700429 ec->ltxacc += abs(tx) - ec->ltx;
430 ec->ltx = (ec->ltxacc + (1 << 4)) >> 5;
431 ec->lrxacc += abs(rx) - ec->lrx;
432 ec->lrx = (ec->lrxacc + (1 << 4)) >> 5;
David Rowe10602db2008-10-06 21:41:46 -0700433
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700434 /* Foreground filter */
David Rowe10602db2008-10-06 21:41:46 -0700435
J.R. Mauro4460a862008-10-20 19:01:31 -0400436 ec->fir_state.coeffs = ec->fir_taps16[0];
437 echo_value = fir16(&ec->fir_state, tx);
438 ec->clean = rx - echo_value;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700439 ec->lcleanacc += abs(ec->clean) - ec->lclean;
440 ec->lclean = (ec->lcleanacc + (1 << 4)) >> 5;
J.R. Mauro4460a862008-10-20 19:01:31 -0400441
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700442 /* Background filter */
J.R. Mauro4460a862008-10-20 19:01:31 -0400443
444 echo_value = fir16(&ec->fir_state_bg, tx);
445 clean_bg = rx - echo_value;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700446 ec->lclean_bgacc += abs(clean_bg) - ec->lclean_bg;
447 ec->lclean_bg = (ec->lclean_bgacc + (1 << 4)) >> 5;
J.R. Mauro4460a862008-10-20 19:01:31 -0400448
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700449 /* Background Filter adaption */
J.R. Mauro4460a862008-10-20 19:01:31 -0400450
451 /* Almost always adap bg filter, just simple DT and energy
452 detection to minimise adaption in cases of strong double talk.
453 However this is not critical for the dual path algorithm.
454 */
455 ec->factor = 0;
456 ec->shift = 0;
457 if ((ec->nonupdate_dwell == 0)) {
Lisa Nguyen0c474822013-05-05 23:38:24 -0700458 int p, logp, shift;
J.R. Mauro4460a862008-10-20 19:01:31 -0400459
460 /* Determine:
461
462 f = Beta * clean_bg_rx/P ------ (1)
463
464 where P is the total power in the filter states.
465
466 The Boffins have shown that if we obey (1) we converge
467 quickly and avoid instability.
468
469 The correct factor f must be in Q30, as this is the fixed
470 point format required by the lms_adapt_bg() function,
471 therefore the scaled version of (1) is:
472
473 (2^30) * f = (2^30) * Beta * clean_bg_rx/P
David Rowe196e76e2009-08-23 10:57:53 +0930474 factor = (2^30) * Beta * clean_bg_rx/P ----- (2)
J.R. Mauro4460a862008-10-20 19:01:31 -0400475
476 We have chosen Beta = 0.25 by experiment, so:
477
David Rowe196e76e2009-08-23 10:57:53 +0930478 factor = (2^30) * (2^-2) * clean_bg_rx/P
J.R. Mauro4460a862008-10-20 19:01:31 -0400479
Rahul Tank7a9aea52011-05-14 11:31:42 +0530480 (30 - 2 - log2(P))
David Rowe196e76e2009-08-23 10:57:53 +0930481 factor = clean_bg_rx 2 ----- (3)
J.R. Mauro4460a862008-10-20 19:01:31 -0400482
483 To avoid a divide we approximate log2(P) as top_bit(P),
484 which returns the position of the highest non-zero bit in
485 P. This approximation introduces an error as large as a
486 factor of 2, but the algorithm seems to handle it OK.
487
488 Come to think of it a divide may not be a big deal on a
489 modern DSP, so its probably worth checking out the cycles
490 for a divide versus a top_bit() implementation.
491 */
492
Lisa Nguyen0c474822013-05-05 23:38:24 -0700493 p = MIN_TX_POWER_FOR_ADAPTION + ec->pstates;
494 logp = top_bit(p) + ec->log2taps;
495 shift = 30 - 2 - logp;
J.R. Mauro4460a862008-10-20 19:01:31 -0400496 ec->shift = shift;
497
498 lms_adapt_bg(ec, clean_bg, shift);
499 }
500
501 /* very simple DTD to make sure we dont try and adapt with strong
502 near end speech */
503
504 ec->adapt = 0;
Lisa Nguyen0c474822013-05-05 23:38:24 -0700505 if ((ec->lrx > MIN_RX_POWER_FOR_ADAPTION) && (ec->lrx > ec->ltx))
J.R. Mauro4460a862008-10-20 19:01:31 -0400506 ec->nonupdate_dwell = DTD_HANGOVER;
507 if (ec->nonupdate_dwell)
508 ec->nonupdate_dwell--;
509
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700510 /* Transfer logic */
J.R. Mauro4460a862008-10-20 19:01:31 -0400511
512 /* These conditions are from the dual path paper [1], I messed with
513 them a bit to improve performance. */
514
515 if ((ec->adaption_mode & ECHO_CAN_USE_ADAPTION) &&
516 (ec->nonupdate_dwell == 0) &&
Alexander Beregalovdc57a3e2009-03-12 03:32:45 +0300517 /* (ec->Lclean_bg < 0.875*ec->Lclean) */
Lisa Nguyen0c474822013-05-05 23:38:24 -0700518 (8 * ec->lclean_bg < 7 * ec->lclean) &&
Alexander Beregalovdc57a3e2009-03-12 03:32:45 +0300519 /* (ec->Lclean_bg < 0.125*ec->Ltx) */
Lisa Nguyen0c474822013-05-05 23:38:24 -0700520 (8 * ec->lclean_bg < ec->ltx)) {
J.R. Mauro4460a862008-10-20 19:01:31 -0400521 if (ec->cond_met == 6) {
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700522 /*
523 * BG filter has had better results for 6 consecutive
524 * samples
525 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400526 ec->adapt = 1;
527 memcpy(ec->fir_taps16[0], ec->fir_taps16[1],
Rahul Tank7a9aea52011-05-14 11:31:42 +0530528 ec->taps * sizeof(int16_t));
J.R. Mauro4460a862008-10-20 19:01:31 -0400529 } else
530 ec->cond_met++;
531 } else
532 ec->cond_met = 0;
533
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700534 /* Non-Linear Processing */
J.R. Mauro4460a862008-10-20 19:01:31 -0400535
536 ec->clean_nlp = ec->clean;
537 if (ec->adaption_mode & ECHO_CAN_USE_NLP) {
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700538 /*
539 * Non-linear processor - a fancy way to say "zap small
540 * signals, to avoid residual echo due to (uLaw/ALaw)
541 * non-linearity in the channel.".
542 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400543
Lisa Nguyen0c474822013-05-05 23:38:24 -0700544 if ((16 * ec->lclean < ec->ltx)) {
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700545 /*
546 * Our e/c has improved echo by at least 24 dB (each
547 * factor of 2 is 6dB, so 2*2*2*2=16 is the same as
548 * 6+6+6+6=24dB)
549 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400550 if (ec->adaption_mode & ECHO_CAN_USE_CNG) {
Lisa Nguyen0c474822013-05-05 23:38:24 -0700551 ec->cng_level = ec->lbgn;
J.R. Mauro4460a862008-10-20 19:01:31 -0400552
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700553 /*
554 * Very elementary comfort noise generation.
555 * Just random numbers rolled off very vaguely
556 * Hoth-like. DR: This noise doesn't sound
557 * quite right to me - I suspect there are some
Jonathan Neuschäfer83aa3c72011-03-01 23:58:54 +0100558 * overflow issues in the filtering as it's too
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700559 * "crackly".
560 * TODO: debug this, maybe just play noise at
561 * high level or look at spectrum.
J.R. Mauro4460a862008-10-20 19:01:31 -0400562 */
563
564 ec->cng_rndnum =
565 1664525U * ec->cng_rndnum + 1013904223U;
566 ec->cng_filter =
567 ((ec->cng_rndnum & 0xFFFF) - 32768 +
568 5 * ec->cng_filter) >> 3;
569 ec->clean_nlp =
570 (ec->cng_filter * ec->cng_level * 8) >> 14;
571
572 } else if (ec->adaption_mode & ECHO_CAN_USE_CLIP) {
573 /* This sounds much better than CNG */
Lisa Nguyen0c474822013-05-05 23:38:24 -0700574 if (ec->clean_nlp > ec->lbgn)
575 ec->clean_nlp = ec->lbgn;
576 if (ec->clean_nlp < -ec->lbgn)
577 ec->clean_nlp = -ec->lbgn;
J.R. Mauro4460a862008-10-20 19:01:31 -0400578 } else {
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700579 /*
580 * just mute the residual, doesn't sound very
581 * good, used mainly in G168 tests
582 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400583 ec->clean_nlp = 0;
584 }
585 } else {
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700586 /*
587 * Background noise estimator. I tried a few
588 * algorithms here without much luck. This very simple
589 * one seems to work best, we just average the level
590 * using a slow (1 sec time const) filter if the
591 * current level is less than a (experimentally
592 * derived) constant. This means we dont include high
593 * level signals like near end speech. When combined
594 * with CNG or especially CLIP seems to work OK.
J.R. Mauro4460a862008-10-20 19:01:31 -0400595 */
Lisa Nguyen0c474822013-05-05 23:38:24 -0700596 if (ec->lclean < 40) {
597 ec->lbgn_acc += abs(ec->clean) - ec->lbgn;
598 ec->lbgn = (ec->lbgn_acc + (1 << 11)) >> 12;
J.R. Mauro4460a862008-10-20 19:01:31 -0400599 }
600 }
601 }
602
603 /* Roll around the taps buffer */
604 if (ec->curr_pos <= 0)
605 ec->curr_pos = ec->taps;
606 ec->curr_pos--;
607
608 if (ec->adaption_mode & ECHO_CAN_DISABLE)
609 ec->clean_nlp = rx;
610
611 /* Output scaled back up again to match input scaling */
612
613 return (int16_t) ec->clean_nlp << 1;
David Rowe10602db2008-10-06 21:41:46 -0700614}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200615EXPORT_SYMBOL_GPL(oslec_update);
David Rowe10602db2008-10-06 21:41:46 -0700616
Anand Gadiyar935e99f2010-05-12 13:03:13 +0530617/* This function is separated from the echo canceller is it is usually called
David Rowe10602db2008-10-06 21:41:46 -0700618 as part of the tx process. See rx HP (DC blocking) filter above, it's
619 the same design.
620
621 Some soft phones send speech signals with a lot of low frequency
622 energy, e.g. down to 20Hz. This can make the hybrid non-linear
623 which causes the echo canceller to fall over. This filter can help
624 by removing any low frequency before it gets to the tx port of the
625 hybrid.
626
627 It can also help by removing and DC in the tx signal. DC is bad
628 for LMS algorithms.
629
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700630 This is one of the classic DC removal filters, adjusted to provide
631 sufficient bass rolloff to meet the above requirement to protect hybrids
632 from things that upset them. The difference between successive samples
633 produces a lousy HPF, and then a suitably placed pole flattens things out.
634 The final result is a nicely rolled off bass end. The filtering is
635 implemented with extended fractional precision, which noise shapes things,
636 giving very clean DC removal.
David Rowe10602db2008-10-06 21:41:46 -0700637*/
638
Chris Forbes30c50072011-07-01 21:55:38 +1200639int16_t oslec_hpf_tx(struct oslec_state *ec, int16_t tx)
J.R. Mauro4460a862008-10-20 19:01:31 -0400640{
Jesper Juhl3ec50be2012-06-27 22:28:55 +0200641 int tmp;
642 int tmp1;
David Rowe10602db2008-10-06 21:41:46 -0700643
J.R. Mauro4460a862008-10-20 19:01:31 -0400644 if (ec->adaption_mode & ECHO_CAN_USE_TX_HPF) {
645 tmp = tx << 15;
David Rowe196e76e2009-08-23 10:57:53 +0930646
Greg Kroah-Hartman49bb9e62009-08-10 10:45:25 -0700647 /*
648 * Make sure the gain of the HPF is 1.0. The first can still
649 * saturate a little under impulse conditions, and it might
650 * roll to 32768 and need clipping on sustained peak level
651 * signals. However, the scale of such clipping is small, and
652 * the error due to any saturation should not markedly affect
653 * the downstream processing.
654 */
J.R. Mauro4460a862008-10-20 19:01:31 -0400655 tmp -= (tmp >> 4);
David Rowe196e76e2009-08-23 10:57:53 +0930656
J.R. Mauro4460a862008-10-20 19:01:31 -0400657 ec->tx_1 += -(ec->tx_1 >> DC_LOG2BETA) + tmp - ec->tx_2;
658 tmp1 = ec->tx_1 >> 15;
659 if (tmp1 > 32767)
660 tmp1 = 32767;
661 if (tmp1 < -32767)
662 tmp1 = -32767;
663 tx = tmp1;
664 ec->tx_2 = tmp;
665 }
David Rowe10602db2008-10-06 21:41:46 -0700666
J.R. Mauro4460a862008-10-20 19:01:31 -0400667 return tx;
David Rowe10602db2008-10-06 21:41:46 -0700668}
Tzafrir Cohen9d8f2d52008-10-12 07:17:26 +0200669EXPORT_SYMBOL_GPL(oslec_hpf_tx);
Tzafrir Cohen68b8d9f2008-10-12 06:55:40 +0200670
671MODULE_LICENSE("GPL");
672MODULE_AUTHOR("David Rowe");
673MODULE_DESCRIPTION("Open Source Line Echo Canceller");
674MODULE_VERSION("0.3.0");