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echo-cancel: Add beamforming support in the webrtc canceller
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commit
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1 changed files with 148 additions and 3 deletions
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@ -53,6 +53,7 @@ PA_C_DECL_END
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#define DEFAULT_INTELLIGIBILITY_ENHANCER false
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#define DEFAULT_EXPERIMENTAL_AGC false
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#define DEFAULT_AGC_START_VOLUME 85
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#define DEFAULT_BEAMFORMING false
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#define DEFAULT_TRACE false
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#define WEBRTC_AGC_MAX_VOLUME 255
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@ -71,6 +72,9 @@ static const char* const valid_modargs[] = {
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"intelligibility_enhancer",
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"experimental_agc",
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"agc_start_volume",
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"beamforming",
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"mic_geometry", /* documented in parse_mic_geometry() */
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"target_direction", /* documented in parse_mic_geometry() */
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"trace",
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NULL
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};
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@ -116,7 +120,8 @@ static pa_volume_t webrtc_volume_to_pa(int v)
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static void webrtc_ec_fixate_spec(pa_sample_spec *rec_ss, pa_channel_map *rec_map,
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pa_sample_spec *play_ss, pa_channel_map *play_map,
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pa_sample_spec *out_ss, pa_channel_map *out_map)
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pa_sample_spec *out_ss, pa_channel_map *out_map,
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bool beamforming)
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{
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rec_ss->format = PA_SAMPLE_FLOAT32NE;
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play_ss->format = PA_SAMPLE_FLOAT32NE;
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@ -134,10 +139,97 @@ static void webrtc_ec_fixate_spec(pa_sample_spec *rec_ss, pa_channel_map *rec_ma
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*out_ss = *rec_ss;
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*out_map = *rec_map;
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if (beamforming) {
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/* The beamformer gives us a single channel */
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out_ss->channels = 1;
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pa_channel_map_init_mono(out_map);
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}
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/* Playback stream rate needs to be the same as capture */
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play_ss->rate = rec_ss->rate;
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}
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static bool parse_point(const char **point, float (&f)[3]) {
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int ret, length;
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ret = sscanf(*point, "%g,%g,%g%n", &f[0], &f[1], &f[2], &length);
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if (ret != 3)
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return false;
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/* Consume the bytes we've read so far */
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*point += length;
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return true;
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}
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static bool parse_mic_geometry(const char **mic_geometry, std::vector<webrtc::Point>& geometry) {
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/* The microphone geometry is expressed as cartesian point form:
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* x1,y1,z1,x2,y2,z2,...
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*
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* Where x1,y1,z1 is the position of the first microphone with regards to
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* the array's "center", x2,y2,z2 the position of the second, and so on.
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*
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* 'x' is the horizontal coordinate, with positive values being to the
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* right from the mic array's perspective.
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*
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* 'y' is the depth coordinate, with positive values being in front of the
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* array.
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*
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* 'z' is the vertical coordinate, with positive values being above the
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* array.
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*
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* All distances are in meters.
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*/
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/* The target direction is expected to be in spherical point form:
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* a,e,r
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*
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* Where 'a is the azimuth of the first mic channel, 'e' its elevation,
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* and 'r' the radius.
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*
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* 0 radians azimuth is to the right of the array, and positive angles
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* move in a counter-clockwise direction.
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*
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* 0 radians elevation is horizontal w.r.t. the array, and positive
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* angles go upwards.
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*
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* radius is distance from the array center in meters.
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*/
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int i;
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float f[3];
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for (i = 0; i < geometry.size(); i++) {
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if (!parse_point(mic_geometry, f)) {
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pa_log("Failed to parse channel %d in mic_geometry", i);
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return false;
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}
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/* Except for the last point, we should have a trailing comma */
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if (i != geometry.size() - 1) {
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if (**mic_geometry != ',') {
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pa_log("Failed to parse channel %d in mic_geometry", i);
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return false;
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}
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(*mic_geometry)++;
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}
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pa_log_debug("Got mic #%d position: (%g, %g, %g)", i, f[0], f[1], f[2]);
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geometry[i].c[0] = f[0];
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geometry[i].c[1] = f[1];
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geometry[i].c[2] = f[2];
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}
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if (**mic_geometry != '\0') {
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pa_log("Failed to parse mic_geometry value: more parameters than expected");
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return false;
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}
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return true;
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}
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bool pa_webrtc_ec_init(pa_core *c, pa_echo_canceller *ec,
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pa_sample_spec *rec_ss, pa_channel_map *rec_map,
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pa_sample_spec *play_ss, pa_channel_map *play_map,
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@ -146,7 +238,7 @@ bool pa_webrtc_ec_init(pa_core *c, pa_echo_canceller *ec,
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webrtc::AudioProcessing *apm = NULL;
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webrtc::ProcessingConfig pconfig;
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webrtc::Config config;
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bool hpf, ns, agc, dgc, mobile, cn, vad, ext_filter, intelligibility, experimental_agc;
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bool hpf, ns, agc, dgc, mobile, cn, vad, ext_filter, intelligibility, experimental_agc, beamforming;
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int rm = -1, i;
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uint32_t agc_start_volume;
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pa_modargs *ma;
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@ -256,6 +348,12 @@ bool pa_webrtc_ec_init(pa_core *c, pa_echo_canceller *ec,
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}
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ec->params.webrtc.agc_start_volume = agc_start_volume;
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beamforming = DEFAULT_BEAMFORMING;
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if (pa_modargs_get_value_boolean(ma, "beamforming", &beamforming) < 0) {
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pa_log("Failed to parse beamforming value");
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goto fail;
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}
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if (ext_filter)
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config.Set<webrtc::ExtendedFilter>(new webrtc::ExtendedFilter(true));
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if (intelligibility)
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@ -276,7 +374,54 @@ bool pa_webrtc_ec_init(pa_core *c, pa_echo_canceller *ec,
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webrtc::Trace::SetTraceCallback((PaWebrtcTraceCallback *) ec->params.webrtc.trace_callback);
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}
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webrtc_ec_fixate_spec(rec_ss, rec_map, play_ss, play_map, out_ss, out_map);
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webrtc_ec_fixate_spec(rec_ss, rec_map, play_ss, play_map, out_ss, out_map, beamforming);
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/* We do this after fixate because we need the capture channel count */
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if (beamforming) {
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std::vector<webrtc::Point> geometry(rec_ss->channels);
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webrtc::SphericalPointf direction(0.0f, 0.0f, 0.0f);
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const char *mic_geometry, *target_direction;
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if (!(mic_geometry = pa_modargs_get_value(ma, "mic_geometry", NULL))) {
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pa_log("mic_geometry must be set if beamforming is enabled");
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goto fail;
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}
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if (!parse_mic_geometry(&mic_geometry, geometry)) {
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pa_log("Failed to parse mic_geometry value");
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goto fail;
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}
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if ((target_direction = pa_modargs_get_value(ma, "target_direction", NULL))) {
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float f[3];
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if (!parse_point(&target_direction, f)) {
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pa_log("Failed to parse target_direction value");
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goto fail;
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}
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if (*target_direction != '\0') {
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pa_log("Failed to parse target_direction value: more parameters than expected");
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goto fail;
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}
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#define IS_ZERO(f) ((f) < 0.000001 && (f) > -0.000001)
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if (!IS_ZERO(f[1]) || !IS_ZERO(f[2])) {
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pa_log("The beamformer currently only supports targeting along the azimuth");
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goto fail;
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}
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direction.s[0] = f[0];
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direction.s[1] = f[1];
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direction.s[2] = f[2];
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}
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if (!target_direction)
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config.Set<webrtc::Beamforming>(new webrtc::Beamforming(true, geometry));
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else
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config.Set<webrtc::Beamforming>(new webrtc::Beamforming(true, geometry, direction));
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}
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apm = webrtc::AudioProcessing::Create(config);
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