mirror of
https://gitlab.freedesktop.org/pulseaudio/pulseaudio.git
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360 lines
9.5 KiB
C
360 lines
9.5 KiB
C
/***
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This file is part of PulseAudio.
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Copyright 2014 David Henningsson, Canonical Ltd.
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PulseAudio is free software; you can redistribute it and/or modify
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it under the terms of the GNU Lesser General Public License as
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published by the Free Software Foundation; either version 2.1 of the
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License, or (at your option) any later version.
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PulseAudio is distributed in the hope that it will be useful, but
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WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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Lesser General Public License for more details.
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You should have received a copy of the GNU Lesser General Public
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License along with PulseAudio; if not, write to the Free Software
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Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307
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USA.
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***/
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#ifdef HAVE_CONFIG_H
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#include <config.h>
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#endif
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#include "srbchannel.h"
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#include <pulsecore/atomic.h>
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#include <pulse/xmalloc.h>
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/* #define DEBUG_SRBCHANNEL */
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/* This ringbuffer might be useful in other contexts too, but
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* right now it's only used inside the srbchannel, so let's keep it here
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* for the time being. */
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typedef struct pa_ringbuffer pa_ringbuffer;
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struct pa_ringbuffer {
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pa_atomic_t *count; /* amount of data in the buffer, can be negative */
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int capacity;
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uint8_t *memory;
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int readindex, writeindex;
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};
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static void *pa_ringbuffer_peek(pa_ringbuffer *r, int *count) {
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int c = pa_atomic_load(r->count);
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if (r->readindex + c > r->capacity)
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*count = r->capacity - r->readindex;
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else
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*count = c;
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return r->memory + r->readindex;
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}
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/* Returns true only if the buffer was completely full before the drop. */
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static bool pa_ringbuffer_drop(pa_ringbuffer *r, int count) {
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bool b = pa_atomic_sub(r->count, count) >= r->capacity;
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r->readindex += count;
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r->readindex %= r->capacity;
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return b;
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}
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static void *pa_ringbuffer_begin_write(pa_ringbuffer *r, int *count) {
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int c = pa_atomic_load(r->count);
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*count = PA_MIN(r->capacity - r->writeindex, r->capacity - c);
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return r->memory + r->writeindex;
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}
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static void pa_ringbuffer_end_write(pa_ringbuffer *r, int count) {
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pa_atomic_add(r->count, count);
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r->writeindex += count;
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r->writeindex %= r->capacity;
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}
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struct pa_srbchannel {
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pa_ringbuffer rb_read, rb_write;
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pa_fdsem *sem_read, *sem_write;
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pa_memblock *memblock;
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void *cb_userdata;
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pa_srbchannel_cb_t callback;
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pa_io_event *read_event;
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pa_mainloop_api *mainloop;
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};
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/* We always listen to sem_read, and always signal on sem_write.
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*
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* This means we signal the same semaphore for two scenarios:
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* 1) We have written something to our send buffer, and want the other
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* side to read it
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* 2) We have read something from our receive buffer that was previously
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* completely full, and want the other side to continue writing
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*/
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size_t pa_srbchannel_write(pa_srbchannel *sr, const void *data, size_t l) {
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size_t written = 0;
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while (l > 0) {
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int towrite;
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void *ptr = pa_ringbuffer_begin_write(&sr->rb_write, &towrite);
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if ((size_t) towrite > l)
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towrite = l;
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if (towrite == 0) {
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#ifdef DEBUG_SRBCHANNEL
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pa_log("srbchannel output buffer full");
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#endif
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break;
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}
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memcpy(ptr, data, towrite);
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pa_ringbuffer_end_write(&sr->rb_write, towrite);
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written += towrite;
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data = (uint8_t*) data + towrite;
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l -= towrite;
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}
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Wrote %d bytes to srbchannel, signalling fdsem", (int) written);
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#endif
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pa_fdsem_post(sr->sem_write);
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return written;
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}
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size_t pa_srbchannel_read(pa_srbchannel *sr, void *data, size_t l) {
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size_t isread = 0;
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while (l > 0) {
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int toread;
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void *ptr = pa_ringbuffer_peek(&sr->rb_read, &toread);
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if ((size_t) toread > l)
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toread = l;
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if (toread == 0)
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break;
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memcpy(data, ptr, toread);
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if (pa_ringbuffer_drop(&sr->rb_read, toread)) {
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Read from full output buffer, signalling fdsem");
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#endif
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pa_fdsem_post(sr->sem_write);
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}
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isread += toread;
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data = (uint8_t*) data + toread;
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l -= toread;
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}
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Read %d bytes from srbchannel", (int) isread);
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#endif
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return isread;
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}
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/* This is the memory layout of the ringbuffer shm block. It is followed by
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read and write ringbuffer memory. */
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struct srbheader {
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pa_atomic_t read_count;
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pa_atomic_t write_count;
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pa_fdsem_data read_semdata;
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pa_fdsem_data write_semdata;
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int capacity;
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int readbuf_offset;
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int writebuf_offset;
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/* TODO: Maybe a marker here to make sure we talk to a server with equally sized struct */
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};
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static void srbchannel_rwloop(pa_srbchannel* sr) {
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do {
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#ifdef DEBUG_SRBCHANNEL
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int q;
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pa_ringbuffer_peek(&sr->rb_read, &q);
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pa_log("In rw loop from srbchannel, before callback, count = %d", q);
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#endif
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if (sr->callback) {
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if (!sr->callback(sr, sr->cb_userdata)) {
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Aborting read loop from srbchannel");
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#endif
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return;
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}
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}
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#ifdef DEBUG_SRBCHANNEL
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pa_ringbuffer_peek(&sr->rb_read, &q);
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pa_log("In rw loop from srbchannel, after callback, count = %d", q);
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#endif
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} while (pa_fdsem_before_poll(sr->sem_read) < 0);
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}
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static void semread_cb(pa_mainloop_api *m, pa_io_event *e, int fd, pa_io_event_flags_t events, void *userdata) {
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pa_srbchannel* sr = userdata;
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pa_fdsem_after_poll(sr->sem_read);
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srbchannel_rwloop(sr);
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}
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pa_srbchannel* pa_srbchannel_new(pa_mainloop_api *m, pa_mempool *p) {
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int capacity;
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int readfd;
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struct srbheader *srh;
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pa_srbchannel* sr = pa_xmalloc0(sizeof(pa_srbchannel));
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sr->mainloop = m;
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sr->memblock = pa_memblock_new_pool(p, -1);
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srh = pa_memblock_acquire(sr->memblock);
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pa_zero(*srh);
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sr->rb_read.memory = (uint8_t*) srh + PA_ALIGN(sizeof(*srh));
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srh->readbuf_offset = sr->rb_read.memory - (uint8_t*) srh;
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capacity = (pa_memblock_get_length(sr->memblock) - srh->readbuf_offset) / 2;
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sr->rb_write.memory = PA_ALIGN_PTR(sr->rb_read.memory + capacity);
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srh->writebuf_offset = sr->rb_write.memory - (uint8_t*) srh;
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capacity = PA_MIN(capacity, srh->writebuf_offset - srh->readbuf_offset);
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pa_log_debug("SHM block is %d bytes, ringbuffer capacity is 2 * %d bytes",
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(int) pa_memblock_get_length(sr->memblock), capacity);
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srh->capacity = sr->rb_read.capacity = sr->rb_write.capacity = capacity;
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sr->rb_read.count = &srh->read_count;
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sr->rb_write.count = &srh->write_count;
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sr->sem_read = pa_fdsem_new_shm(&srh->read_semdata);
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if (!sr->sem_read)
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goto fail;
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sr->sem_write = pa_fdsem_new_shm(&srh->write_semdata);
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if (!sr->sem_write)
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goto fail;
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readfd = pa_fdsem_get(sr->sem_read);
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Enabling io event on fd %d", readfd);
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#endif
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sr->read_event = m->io_new(m, readfd, PA_IO_EVENT_INPUT, semread_cb, sr);
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m->io_enable(sr->read_event, PA_IO_EVENT_INPUT);
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return sr;
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fail:
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pa_srbchannel_free(sr);
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return NULL;
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}
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static void pa_srbchannel_swap(pa_srbchannel *sr) {
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pa_srbchannel temp = *sr;
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sr->sem_read = temp.sem_write;
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sr->sem_write = temp.sem_read;
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sr->rb_read = temp.rb_write;
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sr->rb_write = temp.rb_read;
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}
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pa_srbchannel* pa_srbchannel_new_from_template(pa_mainloop_api *m, pa_srbchannel_template *t)
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{
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int temp;
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struct srbheader *srh;
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pa_srbchannel* sr = pa_xmalloc0(sizeof(pa_srbchannel));
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sr->mainloop = m;
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sr->memblock = t->memblock;
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pa_memblock_ref(sr->memblock);
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srh = pa_memblock_acquire(sr->memblock);
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sr->rb_read.capacity = sr->rb_write.capacity = srh->capacity;
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sr->rb_read.count = &srh->read_count;
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sr->rb_write.count = &srh->write_count;
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sr->rb_read.memory = (uint8_t*) srh + srh->readbuf_offset;
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sr->rb_write.memory = (uint8_t*) srh + srh->writebuf_offset;
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sr->sem_read = pa_fdsem_open_shm(&srh->read_semdata, t->readfd);
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if (!sr->sem_read)
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goto fail;
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sr->sem_write = pa_fdsem_open_shm(&srh->write_semdata, t->writefd);
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if (!sr->sem_write)
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goto fail;
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pa_srbchannel_swap(sr);
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temp = t->readfd; t->readfd = t->writefd; t->writefd = temp;
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Enabling io event on fd %d", t->readfd);
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#endif
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sr->read_event = m->io_new(m, t->readfd, PA_IO_EVENT_INPUT, semread_cb, sr);
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m->io_enable(sr->read_event, PA_IO_EVENT_INPUT);
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return sr;
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fail:
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pa_srbchannel_free(sr);
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return NULL;
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}
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void pa_srbchannel_export(pa_srbchannel *sr, pa_srbchannel_template *t) {
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t->memblock = sr->memblock;
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t->readfd = pa_fdsem_get(sr->sem_read);
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t->writefd = pa_fdsem_get(sr->sem_write);
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}
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void pa_srbchannel_set_callback(pa_srbchannel *sr, pa_srbchannel_cb_t callback, void *userdata) {
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if (sr->callback)
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pa_fdsem_after_poll(sr->sem_read);
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sr->callback = callback;
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sr->cb_userdata = userdata;
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if (sr->callback)
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/* Maybe deferred event? */
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srbchannel_rwloop(sr);
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}
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void pa_srbchannel_free(pa_srbchannel *sr)
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{
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#ifdef DEBUG_SRBCHANNEL
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pa_log("Freeing srbchannel");
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#endif
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pa_assert(sr);
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if (sr->read_event)
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sr->mainloop->io_free(sr->read_event);
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if (sr->sem_read)
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pa_fdsem_free(sr->sem_read);
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if (sr->sem_write)
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pa_fdsem_free(sr->sem_write);
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if (sr->memblock) {
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pa_memblock_release(sr->memblock);
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pa_memblock_unref(sr->memblock);
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}
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pa_xfree(sr);
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}
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