pipewire/spa/plugins/alsa/alsa-pcm.c

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40 KiB
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#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <sched.h>
#include <errno.h>
#include <getopt.h>
#include <sys/time.h>
#include <math.h>
#include <limits.h>
#include <spa/pod/filter.h>
#include <spa/support/system.h>
#define NAME "alsa-pcm"
#include "alsa-pcm.h"
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#define CHECK(s,msg,...) if ((err = (s)) < 0) { spa_log_error(state->log, msg ": %s", ##__VA_ARGS__, snd_strerror(err)); return err; }
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static int spa_alsa_open(struct state *state)
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{
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int err;
struct props *props = &state->props;
snd_pcm_info_t *pcminfo;
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if (state->opened)
return 0;
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CHECK(snd_output_stdio_attach(&state->output, stderr, 0), "attach failed");
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spa_log_debug(state->log, NAME" %p: ALSA device open '%s' %s", state, props->device,
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state->stream == SND_PCM_STREAM_CAPTURE ? "capture" : "playback");
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CHECK(snd_pcm_open(&state->hndl,
props->device,
state->stream,
SND_PCM_NONBLOCK |
SND_PCM_NO_AUTO_RESAMPLE |
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SND_PCM_NO_AUTO_CHANNELS | SND_PCM_NO_AUTO_FORMAT), "%s: open failed", props->device);
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if ((err = spa_system_timerfd_create(state->data_system,
CLOCK_MONOTONIC, SPA_FD_CLOEXEC | SPA_FD_NONBLOCK)) < 0)
goto error_exit_close;
state->timerfd = err;
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snd_pcm_info_alloca(&pcminfo);
snd_pcm_info(state->hndl, pcminfo);
/* we would love to use the sync_id but it always returns 0, so use the
* card id for now */
state->card = snd_pcm_info_get_card(pcminfo);
if (state->clock) {
snprintf(state->clock->name, sizeof(state->clock->name),
"api.alsa.%d", state->card);
}
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state->opened = true;
state->sample_count = 0;
state->sample_time = 0;
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return 0;
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error_exit_close:
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snd_pcm_close(state->hndl);
return err;
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}
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int spa_alsa_close(struct state *state)
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{
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int err = 0;
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if (!state->opened)
return 0;
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spa_log_debug(state->log, NAME" %p: Device '%s' closing", state, state->props.device);
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CHECK(snd_pcm_close(state->hndl), "%s: close failed", state->props.device);
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CHECK(snd_output_close(state->output), "output close failed");
spa_system_close(state->data_system, state->timerfd);
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state->opened = false;
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return err;
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}
struct format_info {
uint32_t spa_format;
uint32_t spa_pformat;
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snd_pcm_format_t format;
};
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static const struct format_info format_info[] = {
{ SPA_AUDIO_FORMAT_UNKNOWN, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_UNKNOWN},
{ SPA_AUDIO_FORMAT_F32_LE, SPA_AUDIO_FORMAT_F32P, SND_PCM_FORMAT_FLOAT_LE},
{ SPA_AUDIO_FORMAT_F32_BE, SPA_AUDIO_FORMAT_F32P, SND_PCM_FORMAT_FLOAT_BE},
{ SPA_AUDIO_FORMAT_S32_LE, SPA_AUDIO_FORMAT_S32P, SND_PCM_FORMAT_S32_LE},
{ SPA_AUDIO_FORMAT_S32_BE, SPA_AUDIO_FORMAT_S32P, SND_PCM_FORMAT_S32_BE},
{ SPA_AUDIO_FORMAT_S24_32_LE, SPA_AUDIO_FORMAT_S24_32P, SND_PCM_FORMAT_S24_LE},
{ SPA_AUDIO_FORMAT_S24_32_BE, SPA_AUDIO_FORMAT_S24_32P, SND_PCM_FORMAT_S24_BE},
{ SPA_AUDIO_FORMAT_S16_LE, SPA_AUDIO_FORMAT_S16P, SND_PCM_FORMAT_S16_LE},
{ SPA_AUDIO_FORMAT_S16_BE, SPA_AUDIO_FORMAT_S16P, SND_PCM_FORMAT_S16_BE},
{ SPA_AUDIO_FORMAT_S24_LE, SPA_AUDIO_FORMAT_S24P, SND_PCM_FORMAT_S24_3LE},
{ SPA_AUDIO_FORMAT_S24_BE, SPA_AUDIO_FORMAT_S24P, SND_PCM_FORMAT_S24_3BE},
{ SPA_AUDIO_FORMAT_S8, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_S8},
{ SPA_AUDIO_FORMAT_U8, SPA_AUDIO_FORMAT_U8P, SND_PCM_FORMAT_U8},
{ SPA_AUDIO_FORMAT_U16_LE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U16_LE},
{ SPA_AUDIO_FORMAT_U16_BE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U16_BE},
{ SPA_AUDIO_FORMAT_U24_32_LE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U24_LE},
{ SPA_AUDIO_FORMAT_U24_32_BE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U24_BE},
{ SPA_AUDIO_FORMAT_U24_LE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U24_3LE},
{ SPA_AUDIO_FORMAT_U24_BE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U24_3BE},
{ SPA_AUDIO_FORMAT_U32_LE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U32_LE},
{ SPA_AUDIO_FORMAT_U32_BE, SPA_AUDIO_FORMAT_UNKNOWN, SND_PCM_FORMAT_U32_BE},
{ SPA_AUDIO_FORMAT_F64_LE, SPA_AUDIO_FORMAT_F64P, SND_PCM_FORMAT_FLOAT64_LE},
{ SPA_AUDIO_FORMAT_F64_BE, SPA_AUDIO_FORMAT_F64P, SND_PCM_FORMAT_FLOAT64_BE},
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};
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static snd_pcm_format_t spa_format_to_alsa(uint32_t format, bool *planar)
{
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size_t i;
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for (i = 0; i < SPA_N_ELEMENTS(format_info); i++) {
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*planar = format_info[i].spa_pformat == format;
if (format_info[i].spa_format == format || *planar)
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return format_info[i].format;
}
return SND_PCM_FORMAT_UNKNOWN;
}
struct chmap_info {
enum snd_pcm_chmap_position pos;
enum spa_audio_channel channel;
};
static const struct chmap_info chmap_info[] = {
[SND_CHMAP_UNKNOWN] = { SND_CHMAP_UNKNOWN, SPA_AUDIO_CHANNEL_UNKNOWN },
[SND_CHMAP_NA] = { SND_CHMAP_NA, SPA_AUDIO_CHANNEL_NA },
[SND_CHMAP_MONO] = { SND_CHMAP_MONO, SPA_AUDIO_CHANNEL_MONO },
[SND_CHMAP_FL] = { SND_CHMAP_FL, SPA_AUDIO_CHANNEL_FL },
[SND_CHMAP_FR] = { SND_CHMAP_FR, SPA_AUDIO_CHANNEL_FR },
[SND_CHMAP_RL] = { SND_CHMAP_RL, SPA_AUDIO_CHANNEL_RL },
[SND_CHMAP_RR] = { SND_CHMAP_RR, SPA_AUDIO_CHANNEL_RR },
[SND_CHMAP_FC] = { SND_CHMAP_FC, SPA_AUDIO_CHANNEL_FC },
[SND_CHMAP_LFE] = { SND_CHMAP_LFE, SPA_AUDIO_CHANNEL_LFE },
[SND_CHMAP_SL] = { SND_CHMAP_SL, SPA_AUDIO_CHANNEL_SL },
[SND_CHMAP_SR] = { SND_CHMAP_SR, SPA_AUDIO_CHANNEL_SR },
[SND_CHMAP_RC] = { SND_CHMAP_RC, SPA_AUDIO_CHANNEL_RC },
[SND_CHMAP_FLC] = { SND_CHMAP_FLC, SPA_AUDIO_CHANNEL_FLC },
[SND_CHMAP_FRC] = { SND_CHMAP_FRC, SPA_AUDIO_CHANNEL_FRC },
[SND_CHMAP_RLC] = { SND_CHMAP_RLC, SPA_AUDIO_CHANNEL_RLC },
[SND_CHMAP_RRC] = { SND_CHMAP_RRC, SPA_AUDIO_CHANNEL_RRC },
[SND_CHMAP_FLW] = { SND_CHMAP_FLW, SPA_AUDIO_CHANNEL_FLW },
[SND_CHMAP_FRW] = { SND_CHMAP_FRW, SPA_AUDIO_CHANNEL_FRW },
[SND_CHMAP_FLH] = { SND_CHMAP_FLH, SPA_AUDIO_CHANNEL_FLH },
[SND_CHMAP_FCH] = { SND_CHMAP_FCH, SPA_AUDIO_CHANNEL_FCH },
[SND_CHMAP_FRH] = { SND_CHMAP_FRH, SPA_AUDIO_CHANNEL_FRH },
[SND_CHMAP_TC] = { SND_CHMAP_TC, SPA_AUDIO_CHANNEL_TC },
[SND_CHMAP_TFL] = { SND_CHMAP_TFL, SPA_AUDIO_CHANNEL_TFL },
[SND_CHMAP_TFR] = { SND_CHMAP_TFR, SPA_AUDIO_CHANNEL_TFR },
[SND_CHMAP_TFC] = { SND_CHMAP_TFC, SPA_AUDIO_CHANNEL_TFC },
[SND_CHMAP_TRL] = { SND_CHMAP_TRL, SPA_AUDIO_CHANNEL_TRL },
[SND_CHMAP_TRR] = { SND_CHMAP_TRR, SPA_AUDIO_CHANNEL_TRR },
[SND_CHMAP_TRC] = { SND_CHMAP_TRC, SPA_AUDIO_CHANNEL_TRC },
[SND_CHMAP_TFLC] = { SND_CHMAP_TFLC, SPA_AUDIO_CHANNEL_TFLC },
[SND_CHMAP_TFRC] = { SND_CHMAP_TFRC, SPA_AUDIO_CHANNEL_TFRC },
[SND_CHMAP_TSL] = { SND_CHMAP_TSL, SPA_AUDIO_CHANNEL_TSL },
[SND_CHMAP_TSR] = { SND_CHMAP_TSR, SPA_AUDIO_CHANNEL_TSR },
[SND_CHMAP_LLFE] = { SND_CHMAP_LLFE, SPA_AUDIO_CHANNEL_LLFE },
[SND_CHMAP_RLFE] = { SND_CHMAP_RLFE, SPA_AUDIO_CHANNEL_RLFE },
[SND_CHMAP_BC] = { SND_CHMAP_BC, SPA_AUDIO_CHANNEL_BC },
[SND_CHMAP_BLC] = { SND_CHMAP_BLC, SPA_AUDIO_CHANNEL_BLC },
[SND_CHMAP_BRC] = { SND_CHMAP_BRC, SPA_AUDIO_CHANNEL_BRC },
};
#define _M(ch) (1LL << SND_CHMAP_ ##ch)
struct def_mask {
int channels;
uint64_t mask;
};
static const struct def_mask default_layouts[] = {
{ 0, 0 },
{ 1, _M(MONO) },
{ 2, _M(FL) | _M(FR) },
{ 3, _M(FL) | _M(FR) | _M(LFE) },
{ 4, _M(FL) | _M(FR) | _M(RL) |_M(RR) },
{ 5, _M(FL) | _M(FR) | _M(RL) |_M(RR) | _M(FC) },
{ 6, _M(FL) | _M(FR) | _M(RL) |_M(RR) | _M(FC) | _M(LFE) },
{ 7, _M(FL) | _M(FR) | _M(RL) |_M(RR) | _M(SL) | _M(SR) | _M(FC) },
{ 8, _M(FL) | _M(FR) | _M(RL) |_M(RR) | _M(SL) | _M(SR) | _M(FC) | _M(LFE) },
};
#define _C(ch) (SPA_AUDIO_CHANNEL_ ##ch)
struct def_map {
uint32_t channels;
uint32_t pos[SPA_AUDIO_MAX_CHANNELS];
};
static const struct def_map default_map[] = {
{ 0, { 0, } } ,
{ 1, { _C(MONO), } },
{ 2, { _C(FL), _C(FR), } },
{ 3, { _C(FL), _C(FR), _C(LFE) } },
{ 4, { _C(FL), _C(FR), _C(RL), _C(RR), } },
{ 5, { _C(FL), _C(FR), _C(RL), _C(RR), _C(FC) } },
{ 6, { _C(FL), _C(FR), _C(RL), _C(RR), _C(FC), _C(LFE), } },
{ 7, { _C(FL), _C(FR), _C(RL), _C(RR), _C(FC), _C(SL), _C(SR), } },
{ 8, { _C(FL), _C(FR), _C(RL), _C(RR), _C(FC), _C(LFE), _C(SL), _C(SR), } },
};
static enum spa_audio_channel chmap_position_to_channel(enum snd_pcm_chmap_position pos)
{
return chmap_info[pos].channel;
}
static void sanitize_map(snd_pcm_chmap_t* map)
{
uint64_t mask = 0, p, dup = 0;
const struct def_mask *def;
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uint32_t i, j, pos;
for (i = 0; i < map->channels; i++) {
if (map->pos[i] > SND_CHMAP_LAST)
map->pos[i] = SND_CHMAP_UNKNOWN;
p = 1LL << map->pos[i];
if (mask & p) {
/* duplicate channel */
for (j = 0; j <= i; j++)
if (map->pos[j] == map->pos[i])
map->pos[j] = SND_CHMAP_UNKNOWN;
dup |= p;
p = 1LL << SND_CHMAP_UNKNOWN;
}
mask |= p;
}
if ((mask & (1LL << SND_CHMAP_UNKNOWN)) == 0)
return;
def = &default_layouts[map->channels];
/* remove duplicates */
mask &= ~dup;
/* keep unassigned channels */
mask = def->mask & ~mask;
pos = 0;
for (i = 0; i < map->channels; i++) {
if (map->pos[i] == SND_CHMAP_UNKNOWN) {
do {
mask >>= 1;
pos++;
}
while (mask != 0 && (mask & 1) == 0);
map->pos[i] = mask ? pos : 0;
}
}
}
int
spa_alsa_enum_format(struct state *state, int seq, uint32_t start, uint32_t num,
const struct spa_pod *filter)
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{
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snd_pcm_t *hndl;
snd_pcm_hw_params_t *params;
snd_pcm_format_mask_t *fmask;
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snd_pcm_access_mask_t *amask;
snd_pcm_chmap_query_t **maps;
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size_t i, j;
int err, dir;
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unsigned int min, max;
uint8_t buffer[4096];
struct spa_pod_builder b = { 0 };
struct spa_pod_choice *choice;
struct spa_pod *fmt;
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int res;
bool opened;
struct spa_pod_frame f[2];
struct spa_result_node_params result;
uint32_t count = 0, rate;
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opened = state->opened;
if ((err = spa_alsa_open(state)) < 0)
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return err;
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result.id = SPA_PARAM_EnumFormat;
result.next = start;
next:
result.index = result.next++;
spa_pod_builder_init(&b, buffer, sizeof(buffer));
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hndl = state->hndl;
snd_pcm_hw_params_alloca(&params);
CHECK(snd_pcm_hw_params_any(hndl, params), "Broken configuration: no configurations available");
spa_pod_builder_push_object(&b, &f[0], SPA_TYPE_OBJECT_Format, SPA_PARAM_EnumFormat);
spa_pod_builder_add(&b,
SPA_FORMAT_mediaType, SPA_POD_Id(SPA_MEDIA_TYPE_audio),
SPA_FORMAT_mediaSubtype, SPA_POD_Id(SPA_MEDIA_SUBTYPE_raw),
0);
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snd_pcm_format_mask_alloca(&fmask);
snd_pcm_hw_params_get_format_mask(params, fmask);
snd_pcm_access_mask_alloca(&amask);
snd_pcm_hw_params_get_access_mask(params, amask);
spa_pod_builder_prop(&b, SPA_FORMAT_AUDIO_format, 0);
spa_pod_builder_push_choice(&b, &f[1], SPA_CHOICE_None, 0);
choice = (struct spa_pod_choice*)spa_pod_builder_frame(&b, &f[1]);
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for (i = 1, j = 0; i < SPA_N_ELEMENTS(format_info); i++) {
const struct format_info *fi = &format_info[i];
if (snd_pcm_format_mask_test(fmask, fi->format)) {
if (snd_pcm_access_mask_test(amask, SND_PCM_ACCESS_MMAP_INTERLEAVED)) {
if (j++ == 0)
spa_pod_builder_id(&b, fi->spa_format);
spa_pod_builder_id(&b, fi->spa_format);
}
if (snd_pcm_access_mask_test(amask, SND_PCM_ACCESS_MMAP_NONINTERLEAVED) &&
fi->spa_pformat != SPA_AUDIO_FORMAT_UNKNOWN) {
if (j++ == 0)
spa_pod_builder_id(&b, fi->spa_pformat);
spa_pod_builder_id(&b, fi->spa_pformat);
}
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}
}
if (j > 1)
choice->body.type = SPA_CHOICE_Enum;
spa_pod_builder_pop(&b, &f[1]);
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CHECK(snd_pcm_hw_params_get_rate_min(params, &min, &dir), "get_rate_min");
CHECK(snd_pcm_hw_params_get_rate_max(params, &max, &dir), "get_rate_max");
spa_pod_builder_prop(&b, SPA_FORMAT_AUDIO_rate, 0);
spa_pod_builder_push_choice(&b, &f[1], SPA_CHOICE_None, 0);
choice = (struct spa_pod_choice*)spa_pod_builder_frame(&b, &f[1]);
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rate = state->position ? state->position->clock.rate.denom : DEFAULT_RATE;
spa_pod_builder_int(&b, SPA_CLAMP(rate, min, max));
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if (min != max) {
spa_pod_builder_int(&b, min);
spa_pod_builder_int(&b, max);
choice->body.type = SPA_CHOICE_Range;
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}
spa_pod_builder_pop(&b, &f[1]);
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CHECK(snd_pcm_hw_params_get_channels_min(params, &min), "get_channels_min");
CHECK(snd_pcm_hw_params_get_channels_max(params, &max), "get_channels_max");
if (state->default_channels != 0) {
if (min < state->default_channels)
min = state->default_channels;
if (max > state->default_channels)
max = state->default_channels;
}
spa_pod_builder_prop(&b, SPA_FORMAT_AUDIO_channels, 0);
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if ((maps = snd_pcm_query_chmaps(hndl)) != NULL) {
uint32_t channel;
snd_pcm_chmap_t* map;
skip_channels:
if (maps[result.index] == NULL) {
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snd_pcm_free_chmaps(maps);
goto enum_end;
}
map = &maps[result.index]->map;
spa_log_debug(state->log, "map %d channels (%d %d)", map->channels, min, max);
if (map->channels < min || map->channels > max) {
result.index = result.next++;
goto skip_channels;
}
sanitize_map(map);
spa_pod_builder_int(&b, map->channels);
spa_pod_builder_prop(&b, SPA_FORMAT_AUDIO_position, 0);
spa_pod_builder_push_array(&b, &f[1]);
for (j = 0; j < map->channels; j++) {
spa_log_debug(state->log, NAME" %p: position %zd %d", state, j, map->pos[j]);
channel = chmap_position_to_channel(map->pos[j]);
spa_pod_builder_id(&b, channel);
}
spa_pod_builder_pop(&b, &f[1]);
snd_pcm_free_chmaps(maps);
}
else {
if (result.index > 0)
goto enum_end;
spa_pod_builder_push_choice(&b, &f[1], SPA_CHOICE_None, 0);
choice = (struct spa_pod_choice*)spa_pod_builder_frame(&b, &f[1]);
spa_pod_builder_int(&b, SPA_CLAMP(DEFAULT_CHANNELS, min, max));
if (min != max) {
spa_pod_builder_int(&b, min);
spa_pod_builder_int(&b, max);
choice->body.type = SPA_CHOICE_Range;
}
spa_pod_builder_pop(&b, &f[1]);
if (min == max && min <= 8) {
const struct def_map *map = &default_map[min];
spa_pod_builder_prop(&b, SPA_FORMAT_AUDIO_position, 0);
spa_pod_builder_push_array(&b, &f[1]);
for (j = 0; j < map->channels; j++) {
spa_log_debug(state->log, NAME" %p: position %zd %d", state, j, map->pos[j]);
spa_pod_builder_id(&b, map->pos[j]);
}
spa_pod_builder_pop(&b, &f[1]);
}
}
fmt = spa_pod_builder_pop(&b, &f[0]);
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if ((res = spa_pod_filter(&b, &result.param, fmt, filter)) < 0)
goto next;
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spa_node_emit_result(&state->hooks, seq, 0, SPA_RESULT_TYPE_NODE_PARAMS, &result);
if (++count != num)
goto next;
enum_end:
res = 0;
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if (!opened)
spa_alsa_close(state);
return res;
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}
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int spa_alsa_set_format(struct state *state, struct spa_audio_info *fmt, uint32_t flags)
{
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unsigned int rrate, rchannels;
snd_pcm_uframes_t period_size;
int err, dir;
snd_pcm_hw_params_t *params;
snd_pcm_format_t format;
struct spa_audio_info_raw *info = &fmt->info.raw;
snd_pcm_t *hndl;
unsigned int periods;
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bool match = true, planar;
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if ((err = spa_alsa_open(state)) < 0)
return err;
hndl = state->hndl;
snd_pcm_hw_params_alloca(&params);
/* choose all parameters */
CHECK(snd_pcm_hw_params_any(hndl, params), "Broken configuration for playback: no configurations available");
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/* set hardware resampling, no resample */
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CHECK(snd_pcm_hw_params_set_rate_resample(hndl, params, 0), "set_rate_resample");
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/* get format info */
format = spa_format_to_alsa(info->format, &planar);
if (format == SND_PCM_FORMAT_UNKNOWN) {
spa_log_warn(state->log, NAME" %p: unknown format %u", state, info->format);
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return -EINVAL;
}
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2020-07-01 11:42:10 +02:00
/* set the interleaved/planar read/write format */
CHECK(snd_pcm_hw_params_set_access(hndl, params,
planar ? SND_PCM_ACCESS_MMAP_NONINTERLEAVED
: SND_PCM_ACCESS_MMAP_INTERLEAVED), "set_access");
/* disable ALSA wakeups, we use a timer */
if (snd_pcm_hw_params_can_disable_period_wakeup(params))
CHECK(snd_pcm_hw_params_set_period_wakeup(hndl, params, 0), "set_period_wakeup");
/* set the sample format */
spa_log_debug(state->log, NAME" %p: Stream parameters are %iHz, %s %s, %i channels",
state, info->rate, snd_pcm_format_name(format),
planar ? "planar" : "interleaved", info->channels);
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CHECK(snd_pcm_hw_params_set_format(hndl, params, format), "set_format");
/* set the count of channels */
rchannels = info->channels;
CHECK(snd_pcm_hw_params_set_channels_near(hndl, params, &rchannels), "set_channels");
if (rchannels != info->channels) {
spa_log_warn(state->log, NAME" %p: Channels doesn't match (requested %u, get %u",
state, info->channels, rchannels);
if (!SPA_FLAG_IS_SET(flags, SPA_NODE_PARAM_FLAG_NEAREST))
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return -EINVAL;
info->channels = rchannels;
match = false;
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}
/* set the stream rate */
rrate = info->rate;
CHECK(snd_pcm_hw_params_set_rate_near(hndl, params, &rrate, 0), "set_rate_near");
if (rrate != info->rate) {
spa_log_warn(state->log, NAME" %p: Rate doesn't match (requested %iHz, get %iHz)",
state, info->rate, rrate);
if (!SPA_FLAG_IS_SET(flags, SPA_NODE_PARAM_FLAG_NEAREST))
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return -EINVAL;
info->rate = rrate;
match = false;
2017-05-26 08:05:01 +02:00
}
state->format = format;
state->channels = info->channels;
state->rate = info->rate;
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state->frame_size = snd_pcm_format_physical_width(format) / 8;
state->blocks = 1;
if (planar)
state->blocks *= info->channels;
else
state->frame_size *= info->channels;
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dir = 0;
period_size = 1024;
2017-05-26 08:05:01 +02:00
CHECK(snd_pcm_hw_params_set_period_size_near(hndl, params, &period_size, &dir), "set_period_size_near");
CHECK(snd_pcm_hw_params_get_buffer_size_max(params, &state->buffer_frames), "get_buffer_size_max");
CHECK(snd_pcm_hw_params_set_buffer_size_near(hndl, params, &state->buffer_frames), "set_buffer_size_near");
2017-05-26 08:05:01 +02:00
state->period_frames = period_size;
periods = state->buffer_frames / state->period_frames;
2020-07-01 11:42:10 +02:00
spa_log_info(state->log, NAME" %s (%s): format:%s %s rate:%d channels:%d "
"buffer frames %lu, period frames %lu, periods %u, frame_size %zd",
state->props.device,
state->stream == SND_PCM_STREAM_CAPTURE ? "capture" : "playback",
2020-07-01 11:42:10 +02:00
snd_pcm_format_name(state->format), planar ? "planar" : "interleaved",
state->rate, state->channels, state->buffer_frames, state->period_frames,
periods, state->frame_size);
2017-05-26 08:05:01 +02:00
/* write the parameters to device */
CHECK(snd_pcm_hw_params(hndl, params), "set_hw_params");
return match ? 0 : 1;
}
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static int set_swparams(struct state *state)
{
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snd_pcm_t *hndl = state->hndl;
int err = 0;
snd_pcm_sw_params_t *params;
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snd_pcm_sw_params_alloca(&params);
2017-05-26 08:05:01 +02:00
/* get the current params */
CHECK(snd_pcm_sw_params_current(hndl, params), "sw_params_current");
2016-09-20 11:20:43 +02:00
2017-05-26 08:05:01 +02:00
CHECK(snd_pcm_sw_params_set_tstamp_mode(hndl, params, SND_PCM_TSTAMP_ENABLE), "sw_params_set_tstamp_mode");
2016-09-20 11:20:43 +02:00
2018-11-19 18:03:45 +01:00
#if 0
snd_pcm_uframes_t boundary;
CHECK(snd_pcm_sw_params_get_boundary(params, &boundary), "get_boundary");
CHECK(snd_pcm_sw_params_set_stop_threshold(hndl, params, boundary), "set_stop_threshold");
#endif
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/* start the transfer */
CHECK(snd_pcm_sw_params_set_start_threshold(hndl, params, LONG_MAX), "set_start_threshold");
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CHECK(snd_pcm_sw_params_set_period_event(hndl, params, 0), "set_period_event");
2017-05-26 08:05:01 +02:00
/* write the parameters to the playback device */
CHECK(snd_pcm_sw_params(hndl, params), "sw_params");
2017-05-26 08:05:01 +02:00
return 0;
}
static int set_timeout(struct state *state, uint64_t time)
{
struct itimerspec ts;
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ts.it_value.tv_sec = time / SPA_NSEC_PER_SEC;
ts.it_value.tv_nsec = time % SPA_NSEC_PER_SEC;
ts.it_interval.tv_sec = 0;
ts.it_interval.tv_nsec = 0;
spa_system_timerfd_settime(state->data_system,
state->timerfd, SPA_FD_TIMER_ABSTIME, &ts, NULL);
return 0;
}
static void init_loop(struct state *state)
{
state->bw = 0.0;
state->z1 = state->z2 = state->z3 = 0.0;
}
static void set_loop(struct state *state, double bw)
{
double w = 2 * M_PI * bw * state->threshold / state->rate;
state->w0 = 1.0 - exp (-20.0 * w);
state->w1 = w * 1.5 / state->threshold;
state->w2 = w / 1.5;
state->bw = bw;
}
static int alsa_recover(struct state *state, int err)
2018-10-31 15:20:52 +00:00
{
int res, st;
snd_pcm_status_t *status;
2018-10-31 15:20:52 +00:00
snd_pcm_status_alloca(&status);
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = snd_pcm_status(state->hndl, status)) < 0)) {
spa_log_error(state->log, NAME" %p: snd_pcm_status error: %s",
state, snd_strerror(res));
2018-10-31 15:20:52 +00:00
return res;
}
st = snd_pcm_status_get_state(status);
switch (st) {
case SND_PCM_STATE_XRUN:
{
struct timeval now, trigger, diff;
uint64_t delay, missing;
2018-10-31 15:20:52 +00:00
snd_pcm_status_get_tstamp (status, &now);
snd_pcm_status_get_trigger_tstamp (status, &trigger);
timersub(&now, &trigger, &diff);
delay = SPA_TIMEVAL_TO_USEC(&diff);
missing = delay * state->rate / SPA_USEC_PER_SEC;
spa_log_trace(state->log, NAME" %p: xrun of %"PRIu64" usec %"PRIu64" %f",
state, delay, missing, state->safety);
spa_node_call_xrun(&state->callbacks,
SPA_TIMEVAL_TO_USEC(&trigger), delay, NULL);
state->sample_count += missing ? missing : state->threshold;
break;
}
default:
spa_log_error(state->log, NAME" %p: recover from error state %d",
state, st);
break;
}
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = snd_pcm_recover(state->hndl, err, true)) < 0)) {
spa_log_error(state->log, NAME" %p: snd_pcm_recover error: %s",
state, snd_strerror(res));
return res;
}
init_loop(state);
state->alsa_recovering = true;
if (state->stream == SND_PCM_STREAM_CAPTURE) {
if ((res = snd_pcm_start(state->hndl)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_start: %s",
state, snd_strerror(res));
return res;
}
state->alsa_started = true;
} else {
state->alsa_started = false;
spa_alsa_write(state, state->threshold * 2);
}
return 0;
}
static int get_status(struct state *state, snd_pcm_uframes_t *delay, snd_pcm_uframes_t *target)
{
snd_pcm_sframes_t avail;
int res;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((avail = snd_pcm_avail(state->hndl)) < 0)) {
if ((res = alsa_recover(state, avail)) < 0)
return res;
if ((avail = snd_pcm_avail(state->hndl)) < 0) {
spa_log_warn(state->log, NAME" %p: snd_pcm_avail after recover: %s",
state, snd_strerror(avail));
avail = state->threshold * 2;
}
} else {
state->alsa_recovering = false;
}
*target = state->last_threshold;
if (state->matching && state->rate_match) {
state->delay = state->rate_match->delay;
state->read_size = state->rate_match->size;
/* We try to compensate for the latency introduced by rate matching
* by moving a little closer to the device read/write pointers.
* Don't try to get closer than 48 samples but instead increase the
* reported latency on the port (TODO). */
if (*target <= state->delay + 48)
state->delay = SPA_MAX(0, (int)(*target - 48 - state->delay));
*target -= state->delay;
} else {
state->delay = state->read_size = 0;
}
if (state->stream == SND_PCM_STREAM_PLAYBACK) {
*delay = state->buffer_frames - avail;
}
else {
*delay = avail;
*target = SPA_MAX(*target, state->read_size);
}
return 0;
}
static int update_time(struct state *state, uint64_t nsec, snd_pcm_sframes_t delay,
snd_pcm_sframes_t target, bool follower)
{
double err, corr;
2019-04-25 16:15:52 +02:00
if (state->stream == SND_PCM_STREAM_PLAYBACK)
err = delay - target;
2019-04-25 16:15:52 +02:00
else
err = (target + 128) - delay;
2019-04-25 16:15:52 +02:00
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(state->bw == 0.0)) {
set_loop(state, BW_MAX);
state->next_time = nsec;
state->base_time = nsec;
}
state->z1 += state->w0 * (state->w1 * err - state->z1);
state->z2 += state->w0 * (state->z1 - state->z2);
state->z3 += state->w2 * state->z2;
2018-11-19 18:03:45 +01:00
corr = 1.0 - (state->z2 + state->z3);
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(state->last_threshold != state->threshold)) {
2019-04-25 16:15:52 +02:00
int32_t diff = (int32_t) (state->last_threshold - state->threshold);
spa_log_trace(state->log, NAME" %p: follower:%d quantum change %d",
state, follower, diff);
2019-04-25 16:15:52 +02:00
state->next_time += diff / corr * 1e9 / state->rate;
2019-09-24 17:23:01 +02:00
state->last_threshold = state->threshold;
2019-04-25 16:15:52 +02:00
}
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((state->next_time - state->base_time) > BW_PERIOD)) {
state->base_time = state->next_time;
if (state->bw == BW_MAX)
set_loop(state, BW_MED);
else if (state->bw == BW_MED)
set_loop(state, BW_MIN);
spa_log_debug(state->log, NAME" %p: follower:%d match:%d rate:%f bw:%f del:%d target:%ld err:%f (%f %f %f)",
state, follower, state->matching, corr, state->bw, state->delay, target,
err, state->z1, state->z2, state->z3);
}
2018-10-31 15:20:52 +00:00
if (state->rate_match) {
if (state->stream == SND_PCM_STREAM_PLAYBACK)
state->rate_match->rate = SPA_CLAMP(corr, 0.95, 1.05);
else
state->rate_match->rate = SPA_CLAMP(1.0/corr, 0.95, 1.05);
SPA_FLAG_UPDATE(state->rate_match->flags, SPA_IO_RATE_MATCH_FLAG_ACTIVE, state->matching);
}
2019-09-24 17:23:01 +02:00
state->next_time += state->threshold / corr * 1e9 / state->rate;
2020-03-16 12:52:28 +01:00
if (SPA_LIKELY(!follower && state->clock)) {
state->clock->nsec = nsec;
state->clock->position += state->duration;
state->clock->duration = state->duration;
state->clock->delay = delay;
state->clock->rate_diff = corr;
state->clock->next_nsec = state->next_time;
}
spa_log_trace_fp(state->log, NAME" %p: follower:%d %"PRIu64" %f %ld %f %f %d",
state, follower, nsec, corr, delay, err, state->threshold * corr,
state->threshold);
2018-10-31 15:20:52 +00:00
return 0;
}
int spa_alsa_write(struct state *state, snd_pcm_uframes_t silence)
{
snd_pcm_t *hndl = state->hndl;
const snd_pcm_channel_area_t *my_areas;
snd_pcm_uframes_t written, frames, offset, off, to_write, total_written;
int res;
2020-03-16 12:52:28 +01:00
if (SPA_LIKELY(state->position && state->duration != state->position->clock.duration)) {
state->duration = state->position->clock.duration;
state->threshold = (state->duration * state->rate + state->rate_denom-1) / state->rate_denom;
}
if (state->following && state->alsa_started) {
uint64_t nsec;
snd_pcm_uframes_t delay, target;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = get_status(state, &delay, &target)) < 0))
return res;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(!state->alsa_recovering && delay > target + state->threshold)) {
spa_log_warn(state->log, NAME" %p: follower delay:%ld resync %f %f %f",
state, delay, state->z1, state->z2, state->z3);
2019-04-25 12:53:23 +02:00
init_loop(state);
state->alsa_sync = true;
}
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(state->alsa_sync)) {
if (delay > target)
snd_pcm_rewind(state->hndl, delay - target);
else
snd_pcm_forward(state->hndl, target - delay);
delay = target;
state->alsa_sync = false;
}
nsec = state->position->clock.nsec;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = update_time(state, nsec, delay, target, true)) < 0))
return res;
}
total_written = 0;
again:
frames = state->buffer_frames;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = snd_pcm_mmap_begin(hndl, &my_areas, &offset, &frames)) < 0)) {
spa_log_error(state->log, NAME" %p: snd_pcm_mmap_begin error: %s",
state, snd_strerror(res));
return res;
}
spa_log_trace_fp(state->log, NAME" %p: begin %ld %ld %d %ld",
state, offset, frames, state->threshold, silence);
silence = SPA_MIN(silence, frames);
to_write = frames;
off = offset;
written = 0;
2017-05-26 08:05:01 +02:00
while (!spa_list_is_empty(&state->ready) && to_write > 0) {
uint8_t *dst, *src;
size_t n_bytes, n_frames;
2017-05-26 08:05:01 +02:00
struct buffer *b;
struct spa_data *d;
2020-07-01 11:42:10 +02:00
uint32_t i, index, offs, avail, size, maxsize, l0, l1;
2017-05-26 08:05:01 +02:00
b = spa_list_first(&state->ready, struct buffer, link);
d = b->buf->datas;
2017-05-26 08:05:01 +02:00
size = d[0].chunk->size;
maxsize = d[0].maxsize;
index = d[0].chunk->offset + state->ready_offset;
avail = size - state->ready_offset;
avail /= state->frame_size;
2017-05-26 08:05:01 +02:00
n_frames = SPA_MIN(avail, to_write);
n_bytes = n_frames * state->frame_size;
offs = index % maxsize;
l0 = SPA_MIN(n_bytes, maxsize - offs);
l1 = n_bytes - l0;
2020-07-01 11:42:10 +02:00
for (i = 0; i < b->buf->n_datas; i++) {
dst = SPA_MEMBER(my_areas[i].addr, off * state->frame_size, uint8_t);
src = d[i].data;
2017-05-26 08:05:01 +02:00
2020-07-01 11:42:10 +02:00
spa_memcpy(dst, src + offs, l0);
if (SPA_UNLIKELY(l1 > 0))
spa_memcpy(dst + l0, src, l1);
}
state->ready_offset += n_bytes;
if (state->ready_offset >= size) {
2017-05-26 08:05:01 +02:00
spa_list_remove(&b->link);
SPA_FLAG_SET(b->flags, BUFFER_FLAG_OUT);
state->io->buffer_id = b->id;
spa_log_trace_fp(state->log, NAME" %p: reuse buffer %u", state, b->id);
spa_node_call_reuse_buffer(&state->callbacks, 0, b->id);
state->ready_offset = 0;
2017-05-26 08:05:01 +02:00
}
written += n_frames;
off += n_frames;
2017-05-26 08:05:01 +02:00
to_write -= n_frames;
if (silence > n_frames)
silence -= n_frames;
else
silence = 0;
2017-05-26 08:05:01 +02:00
}
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(silence > 0)) {
spa_log_trace_fp(state->log, NAME" %p: silence %ld", state, silence);
snd_pcm_areas_silence(my_areas, off, state->channels, silence, state->format);
written += silence;
}
spa_log_trace_fp(state->log, NAME" %p: commit %ld %ld %"PRIi64,
state, offset, written, state->sample_count);
total_written += written;
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY((res = snd_pcm_mmap_commit(hndl, offset, written)) < 0)) {
spa_log_error(state->log, NAME" %p: snd_pcm_mmap_commit error: %s",
state, snd_strerror(res));
if (res != -EPIPE && res != -ESTRPIPE)
return res;
2017-10-24 18:04:03 +02:00
}
if (!spa_list_is_empty(&state->ready) && written > 0)
goto again;
state->sample_count += total_written;
2017-10-24 18:04:03 +02:00
2020-03-16 12:52:28 +01:00
if (SPA_UNLIKELY(!state->alsa_started && total_written > 0)) {
spa_log_trace(state->log, NAME" %p: snd_pcm_start %lu", state, written);
if ((res = snd_pcm_start(hndl)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_start: %s",
state, snd_strerror(res));
return res;
2017-10-24 18:04:03 +02:00
}
state->alsa_started = true;
2017-05-26 08:05:01 +02:00
}
return 0;
}
void spa_alsa_recycle_buffer(struct state *this, uint32_t buffer_id)
{
struct buffer *b = &this->buffers[buffer_id];
if (SPA_FLAG_IS_SET(b->flags, BUFFER_FLAG_OUT)) {
spa_log_trace_fp(this->log, NAME " %p: recycle buffer %u", this, buffer_id);
spa_list_append(&this->free, &b->link);
SPA_FLAG_CLEAR(b->flags, BUFFER_FLAG_OUT);
}
}
static snd_pcm_uframes_t
2017-05-26 08:05:01 +02:00
push_frames(struct state *state,
2017-05-26 18:19:51 +02:00
const snd_pcm_channel_area_t *my_areas,
snd_pcm_uframes_t offset,
snd_pcm_uframes_t frames,
snd_pcm_uframes_t keep)
2016-09-19 09:16:58 +02:00
{
2017-05-26 08:05:01 +02:00
snd_pcm_uframes_t total_frames = 0;
if (spa_list_is_empty(&state->free)) {
spa_log_warn(state->log, NAME" %p: no more buffers", state);
total_frames = frames;
} else if (frames > 0) {
2017-05-26 08:05:01 +02:00
uint8_t *src;
size_t n_bytes, left;
2017-05-26 08:05:01 +02:00
struct buffer *b;
struct spa_data *d;
2020-07-01 11:42:10 +02:00
uint32_t i, avail, l0, l1;
2017-05-26 08:05:01 +02:00
b = spa_list_first(&state->free, struct buffer, link);
spa_list_remove(&b->link);
if (b->h) {
b->h->seq = state->sample_count;
b->h->pts = state->next_time;
2017-05-26 08:05:01 +02:00
b->h->dts_offset = 0;
}
d = b->buf->datas;
2017-05-26 08:05:01 +02:00
avail = d[0].maxsize / state->frame_size;
total_frames = SPA_MIN(avail, frames);
2017-05-26 08:05:01 +02:00
n_bytes = total_frames * state->frame_size;
if (my_areas) {
left = state->buffer_frames - offset;
l0 = SPA_MIN(n_bytes, left * state->frame_size);
l1 = n_bytes - l0;
2020-07-01 11:42:10 +02:00
for (i = 0; i < b->buf->n_datas; i++) {
src = SPA_MEMBER(my_areas[i].addr, offset * state->frame_size, uint8_t);
spa_memcpy(d[i].data, src, l0);
if (l1 > 0)
spa_memcpy(SPA_MEMBER(d[i].data, l0, void), my_areas[i].addr, l1);
d[i].chunk->offset = 0;
d[i].chunk->size = n_bytes;
d[i].chunk->stride = state->frame_size;
}
} else {
2020-07-01 11:42:10 +02:00
for (i = 0; i < b->buf->n_datas; i++) {
memset(d[i].data, 0, n_bytes);
d[i].chunk->offset = 0;
d[i].chunk->size = n_bytes;
d[i].chunk->stride = state->frame_size;
}
}
spa_list_append(&state->ready, &b->link);
2017-05-26 08:05:01 +02:00
}
return total_frames - keep;
}
int spa_alsa_read(struct state *state, snd_pcm_uframes_t silence)
{
snd_pcm_t *hndl = state->hndl;
snd_pcm_uframes_t total_read = 0, to_read;
const snd_pcm_channel_area_t *my_areas;
snd_pcm_uframes_t read, frames, offset;
2017-05-26 08:05:01 +02:00
int res;
if (state->position) {
if (state->duration != state->position->clock.duration) {
state->duration = state->position->clock.duration;
state->threshold = (state->duration * state->rate + state->rate_denom-1) / state->rate_denom;
}
if (!state->following) {
uint64_t position;
position = state->position->clock.position;
if (state->last_position && state->last_position + state->last_duration != position) {
state->alsa_sync = true;
spa_log_warn(state->log, NAME" %p: discont, resync %"PRIu64" %"PRIu64" %d",
state, state->last_position, position, state->last_duration);
}
state->last_position = position;
state->last_duration = state->duration;
}
}
if (state->following && state->alsa_started) {
uint64_t nsec;
snd_pcm_uframes_t delay, target;
uint32_t threshold = state->threshold;
2018-10-31 15:20:52 +00:00
if ((res = get_status(state, &delay, &target)) < 0)
return res;
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if (!state->alsa_recovering && (delay < target || delay > target * 2)) {
spa_log_warn(state->log, NAME" %p: follower delay:%lu target:%lu resync %f %f %f",
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state, delay, target, state->z1, state->z2, state->z3);
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init_loop(state);
state->alsa_sync = true;
}
if (state->alsa_sync) {
spa_log_warn(state->log, NAME" %p: follower resync %ld %d %ld",
state, delay, threshold, target);
if (delay < target)
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snd_pcm_rewind(state->hndl, target - delay + 32);
else if (delay > target)
snd_pcm_forward(state->hndl, delay - target);
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delay = target;
state->alsa_sync = false;
}
nsec = state->position->clock.nsec;
if ((res = update_time(state, nsec, delay, target, true)) < 0)
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return res;
}
frames = state->read_size;
if (frames == 0)
frames = state->threshold + state->delay;
to_read = state->buffer_frames;
if ((res = snd_pcm_mmap_begin(hndl, &my_areas, &offset, &to_read)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_mmap_begin error: %s",
state, snd_strerror(res));
return res;
}
spa_log_trace_fp(state->log, NAME" %p: begin %ld %ld %ld %d", state,
offset, frames, to_read, state->threshold);
read = push_frames(state, my_areas, offset, frames, state->delay);
spa_log_trace_fp(state->log, NAME" %p: commit %ld %ld %"PRIi64, state,
offset, read, state->sample_count);
total_read += read;
if ((res = snd_pcm_mmap_commit(hndl, offset, read)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_mmap_commit error: %s",
state, snd_strerror(res));
if (res != -EPIPE && res != -ESTRPIPE)
return res;
}
state->sample_count += total_read;
return 0;
}
static int handle_play(struct state *state, uint64_t nsec,
snd_pcm_uframes_t delay, snd_pcm_uframes_t target)
{
int res;
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if (SPA_UNLIKELY(delay > target + state->last_threshold)) {
spa_log_trace(state->log, NAME" %p: early wakeup %ld %ld", state, delay, target);
state->next_time = nsec + (delay - target) * SPA_NSEC_PER_SEC / state->rate;
return -EAGAIN;
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}
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if (SPA_UNLIKELY((res = update_time(state, nsec, delay, target, false)) < 0))
return res;
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if (spa_list_is_empty(&state->ready)) {
struct spa_io_buffers *io = state->io;
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spa_log_trace_fp(state->log, NAME" %p: %d", state, io->status);
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io->status = SPA_STATUS_NEED_DATA;
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res = spa_node_call_ready(&state->callbacks, SPA_STATUS_NEED_DATA);
}
else {
res = spa_alsa_write(state, 0);
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}
return res;
}
static int handle_capture(struct state *state, uint64_t nsec,
snd_pcm_uframes_t delay, snd_pcm_uframes_t target)
{
int res;
struct spa_io_buffers *io;
if (delay < target) {
spa_log_trace(state->log, NAME" %p: early wakeup %ld %ld", state, delay, target);
state->next_time = nsec + (target - delay) * SPA_NSEC_PER_SEC /
state->rate;
return 0;
}
if ((res = update_time(state, nsec, delay, target, false)) < 0)
return res;
if ((res = spa_alsa_read(state, target)) < 0)
return res;
if (spa_list_is_empty(&state->ready))
return 0;
io = state->io;
if (io != NULL && io->status != SPA_STATUS_HAVE_DATA) {
struct buffer *b;
if (io->buffer_id < state->n_buffers)
spa_alsa_recycle_buffer(state, io->buffer_id);
b = spa_list_first(&state->ready, struct buffer, link);
spa_list_remove(&b->link);
SPA_FLAG_SET(b->flags, BUFFER_FLAG_OUT);
io->buffer_id = b->id;
io->status = SPA_STATUS_HAVE_DATA;
}
spa_node_call_ready(&state->callbacks, SPA_STATUS_HAVE_DATA);
return 0;
}
static void alsa_on_timeout_event(struct spa_source *source)
{
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struct state *state = source->data;
snd_pcm_uframes_t delay, target;
uint64_t expire;
int res;
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if (SPA_UNLIKELY(state->started && spa_system_timerfd_read(state->data_system, state->timerfd, &expire) < 0))
spa_log_warn(state->log, NAME" %p: error reading timerfd: %m", state);
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if (SPA_LIKELY(state->position)) {
state->duration = state->position->clock.duration;
state->threshold = (state->duration * state->rate + state->rate_denom-1) / state->rate_denom;
}
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if (SPA_UNLIKELY((res = get_status(state, &delay, &target)) < 0))
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return;
state->current_time = state->next_time;
#ifndef FASTPATH
if (SPA_UNLIKELY(spa_log_level_enabled(state->log, SPA_LOG_LEVEL_TRACE))) {
struct timespec now;
uint64_t nsec;
spa_system_clock_gettime(state->data_system, CLOCK_MONOTONIC, &now);
nsec = SPA_TIMESPEC_TO_NSEC(&now);
spa_log_trace_fp(state->log, NAME" %p: timeout %lu %lu %"PRIu64" %"PRIu64" %"PRIi64
" %d %"PRIi64, state, delay, target, nsec, state->current_time,
nsec - state->current_time, state->threshold, state->sample_count);
}
#endif
if (state->stream == SND_PCM_STREAM_PLAYBACK)
handle_play(state, state->current_time, delay, target);
else
handle_capture(state, state->current_time, delay, target);
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set_timeout(state, state->next_time);
}
static void reset_buffers(struct state *this)
{
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uint32_t i;
spa_list_init(&this->free);
spa_list_init(&this->ready);
for (i = 0; i < this->n_buffers; i++) {
struct buffer *b = &this->buffers[i];
if (this->stream == SND_PCM_STREAM_PLAYBACK) {
SPA_FLAG_SET(b->flags, BUFFER_FLAG_OUT);
spa_node_call_reuse_buffer(&this->callbacks, 0, b->id);
} else {
spa_list_append(&this->free, &b->link);
SPA_FLAG_CLEAR(b->flags, BUFFER_FLAG_OUT);
}
}
}
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static int set_timers(struct state *state)
{
struct timespec now;
spa_system_clock_gettime(state->data_system, CLOCK_MONOTONIC, &now);
state->next_time = SPA_TIMESPEC_TO_NSEC(&now);
if (state->following) {
set_timeout(state, 0);
} else {
set_timeout(state, state->next_time);
}
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return 0;
}
static inline bool is_following(struct state *state)
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{
return state->position && state->clock && state->position->clock.id != state->clock->id;
}
int spa_alsa_start(struct state *state)
{
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int err;
if (state->started)
return 0;
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state->following = is_following(state);
state->matching = state->following;
if (state->position) {
int card;
if (sscanf(state->position->clock.name, "api.alsa.%d", &card) == 1 &&
card == state->card) {
state->matching = false;
}
state->duration = state->position->clock.duration;
state->rate_denom = state->position->clock.rate.denom;
}
else {
spa_log_warn(state->log, NAME" %p: no position set, using defaults", state);
state->duration = state->props.min_latency;
state->rate_denom = state->rate;
}
state->threshold = (state->duration * state->rate + state->rate_denom-1) / state->rate_denom;
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state->last_threshold = state->threshold;
init_loop(state);
state->safety = 0.0;
spa_log_debug(state->log, NAME" %p: start %d duration:%d rate:%d follower:%d match:%d",
state, state->threshold, state->duration, state->rate_denom,
state->following, state->matching);
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CHECK(set_swparams(state), "swparams");
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if (SPA_UNLIKELY(spa_log_level_enabled(state->log, SPA_LOG_LEVEL_DEBUG)))
snd_pcm_dump(state->hndl, state->output);
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if ((err = snd_pcm_prepare(state->hndl)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_prepare error: %s", state,
snd_strerror(err));
return err;
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}
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state->source.func = alsa_on_timeout_event;
state->source.data = state;
state->source.fd = state->timerfd;
state->source.mask = SPA_IO_IN;
state->source.rmask = 0;
spa_loop_add_source(state->data_loop, &state->source);
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reset_buffers(state);
state->alsa_sync = true;
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if (state->stream == SND_PCM_STREAM_PLAYBACK) {
state->alsa_started = false;
spa_alsa_write(state, state->threshold * 2);
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} else {
if ((err = snd_pcm_start(state->hndl)) < 0) {
spa_log_error(state->log, NAME" %p: snd_pcm_start: %s", state,
snd_strerror(err));
return err;
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}
state->alsa_started = true;
}
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set_timers(state);
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state->started = true;
return 0;
}
static int do_reassign_follower(struct spa_loop *loop,
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bool async,
uint32_t seq,
const void *data,
size_t size,
void *user_data)
{
struct state *state = user_data;
set_timers(state);
init_loop(state);
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return 0;
}
int spa_alsa_reassign_follower(struct state *state)
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{
bool following;
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if (!state->started)
return 0;
following = is_following(state);
if (following != state->following) {
spa_log_debug(state->log, NAME" %p: reassign follower %d->%d", state, state->following, following);
state->following = following;
spa_loop_invoke(state->data_loop, do_reassign_follower, 0, NULL, 0, true, state);
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}
return 0;
}
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static int do_remove_source(struct spa_loop *loop,
bool async,
uint32_t seq,
const void *data,
size_t size,
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void *user_data)
{
struct state *state = user_data;
struct itimerspec ts;
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spa_loop_remove_source(state->data_loop, &state->source);
ts.it_value.tv_sec = 0;
ts.it_value.tv_nsec = 0;
ts.it_interval.tv_sec = 0;
ts.it_interval.tv_nsec = 0;
spa_system_timerfd_settime(state->data_system, state->timerfd, 0, &ts, NULL);
return 0;
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}
int spa_alsa_pause(struct state *state)
{
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int err;
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if (!state->started)
return 0;
spa_log_debug(state->log, NAME" %p: pause", state);
spa_loop_invoke(state->data_loop, do_remove_source, 0, NULL, 0, true, state);
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if ((err = snd_pcm_drop(state->hndl)) < 0)
spa_log_error(state->log, NAME" %p: snd_pcm_drop %s", state,
snd_strerror(err));
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state->started = false;
return 0;
}