Drop the M0 no-deps skeleton preset and all VOICECAT_HAS_NET/AUDIO/OPUS/NS guards that it required. Every subsystem is fully implemented; the stub #else paths were dead code that added noise to every header and source file. - CMakePresets.json: remove skeleton configure/build/test entries - CMakeLists.txt (root/core/tests): remove VOICECAT_USE_VCPKG_DEPS option and guards; all targets now build unconditionally - 17 C++ source files: unwrap HAS_* guards, delete stub #else blocks - apm_processor.cpp: delete ApmPassthrough no-op class; create() always returns RnnoiseProcessor - 18 test files: remove HAS_* guards and stub int main() skip bodies - docs/building.md: remove skeleton from preset table and prose VOICECAT_HAS_LOOPBACK (Windows WASAPI loopback platform gate) unchanged. 29/29 ctest green. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
733 lines
32 KiB
C++
733 lines
32 KiB
C++
/*
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* test_vad_ptt_devices — closes M3's "explicitly out of scope" gaps (PROGRESS.md): device
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* enumeration, the VAD/PTT send-side input gate, and true stereo playback mixing.
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*
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* Mirrors test_m3_multistream.cpp's approach (real vc_client instances against a real
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* in-process server, not raw sockets) for the ABI-level pieces, plus a white-box AudioEngine
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* test for the stereo mixer (no audio hardware needed — see AudioEngine::mix_for_test).
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*
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* 1. Device enumeration (vc_list_devices) works pre-connect, for both kinds, and tolerates
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* an empty list (headless CI build agents may have zero audio devices) — VC_OK is the
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* only thing asserted, never count > 0.
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* 2. VAD gate: under VC_INPUT_VOICE_ACTIVATION (the default), silent PCM never reaches the
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* peer (no talking edge); loud PCM does.
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* 3. PTT gate: under VC_INPUT_PUSH_TO_TALK, loud PCM is gated closed until
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* vc_set_push_to_talk(1); then it reaches the peer.
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* 4. Stereo playback mixer: white-box (AudioEngine directly) — a genuinely stereo decoded
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* stream survives into the mix without being downmixed to mono.
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*/
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#include <cstdio>
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#include <atomic>
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#include <chrono>
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#include <cmath>
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#include <condition_variable>
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#include <cstdlib>
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#include <filesystem>
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#include <mutex>
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#include <string>
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#include <thread>
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#include <vector>
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#include "voicecat.h"
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#include "server.h"
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#include "db.h"
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#include "audio/audio_engine.h"
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#include "codec/opus_codec.h"
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// ── Event tracking (same shape as test_m3_multistream.cpp) ──────────────────────
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struct TalkEvent {
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uint32_t user_id;
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uint32_t stream_id;
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bool talking;
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};
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struct EventStore {
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std::mutex mu;
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std::condition_variable cv;
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bool auth_ok{false};
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uint32_t self_user_id{0};
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bool channel_list_received{false};
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bool saw_stream_started{false};
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std::vector<TalkEvent> talk_events;
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bool voice_subscribed{false};
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bool disconnected{false};
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const char* label{nullptr};
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// Set right after vc_client_create, before vc_connect — lets on_event auto-confirm the
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// M4 TOFU gate (VC_EVENT_SERVER_IDENTITY below) for this headless test.
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vc_client* client{nullptr};
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};
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static void on_event(void* user, const vc_event* ev) {
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auto* s = static_cast<EventStore*>(user);
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std::lock_guard lk(s->mu);
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switch (ev->type) {
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case VC_EVENT_SERVER_IDENTITY:
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// No human to ask in a headless test — trust on first connect unconditionally.
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vc_confirm_server_identity(s->client, 1);
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break;
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case VC_EVENT_AUTH_RESULT:
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s->auth_ok = (ev->result == VC_OK);
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s->self_user_id = ev->user_id;
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break;
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case VC_EVENT_CHANNEL_LIST:
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s->channel_list_received = true;
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break;
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case VC_EVENT_VOICE_STATE:
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s->voice_subscribed = (ev->u32a == 1);
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break;
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case VC_EVENT_STREAM_STARTED:
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s->saw_stream_started = true;
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break;
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case VC_EVENT_TALK_STATE:
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s->talk_events.push_back({ev->user_id, ev->stream_id, ev->u32a != 0});
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break;
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case VC_EVENT_DISCONNECTED:
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s->disconnected = true;
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break;
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default:
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break;
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}
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s->cv.notify_all();
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}
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template <typename Pred>
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static bool wait_for(EventStore& s, Pred pred, int timeout_ms) {
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auto deadline = std::chrono::steady_clock::now() + std::chrono::milliseconds(timeout_ms);
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std::unique_lock lk(s.mu);
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return s.cv.wait_until(lk, deadline, [&] { return pred(s); });
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}
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static std::vector<int16_t> make_sine_frame(int frame_idx, float freq_hz,
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int frame_samples = 960) {
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std::vector<int16_t> pcm(frame_samples);
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for (int i = 0; i < frame_samples; ++i) {
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float t = static_cast<float>(frame_idx * frame_samples + i) / 48000.0f;
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pcm[i] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * freq_hz * t) * 16000.0f);
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}
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return pcm;
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}
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static std::vector<int16_t> make_silence_frame(int frame_samples = 960) {
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return std::vector<int16_t>(frame_samples, 0);
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}
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// Did `talking==true` ever fire for (user_id, stream_id) at index >= `from`?
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static bool saw_talking_true(EventStore& s, uint32_t user_id, uint32_t stream_id, size_t from) {
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std::lock_guard lk(s.mu);
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for (size_t i = from; i < s.talk_events.size(); ++i) {
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auto& e = s.talk_events[i];
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if (e.user_id == user_id && e.stream_id == stream_id && e.talking) return true;
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}
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return false;
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}
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static size_t talk_event_count(EventStore& s) {
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std::lock_guard lk(s.mu);
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return s.talk_events.size();
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}
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// ── Test harness ──────────────────────────────────────────────────────────────
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static int g_failures = 0;
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#define CHECK(cond) \
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do { \
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if (!(cond)) { \
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std::printf("FAIL: %s (%s:%d)\n", #cond, __FILE__, __LINE__); \
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++g_failures; \
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} \
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} while (0)
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// ── 1. Device enumeration (no server needed) ────────────────────────────────────
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static void test_device_enumeration() {
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vc_config cfg{"test-devices", "0.1", VC_LOG_OFF};
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vc_callbacks cb{};
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vc_client* c = vc_client_create(&cfg, cb);
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CHECK(c != nullptr);
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for (vc_device_kind kind : {VC_DEVICE_INPUT, VC_DEVICE_OUTPUT}) {
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vc_device_list dl{};
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vc_result r = vc_list_devices(c, kind, &dl);
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CHECK(r == VC_OK);
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// Headless CI build agents may legitimately report zero devices — never assert
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// count > 0, only that the call itself succeeded and the list is well-formed.
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for (size_t i = 0; i < dl.count; ++i) {
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CHECK(dl.items[i].id != nullptr);
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CHECK(dl.items[i].name != nullptr);
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}
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vc_free_device_list(&dl);
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vc_free_device_list(&dl); // idempotent — must not crash on a second call
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}
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vc_client_destroy(c);
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std::printf("test_device_enumeration: ok\n");
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}
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// ── 4. Stereo playback mixer (white-box, no audio hardware needed) ──────────────
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static void test_stereo_mix() {
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voicecat::audio::AudioEngine engine;
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voicecat::audio::AudioParams p;
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p.sample_rate = 48000;
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p.capture_channels = 1;
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p.playback_channels = 2;
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p.frame_ms = 20;
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CHECK(engine.start(p)); // capture_cb intentionally omitted — not exercised here
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voicecat::codec::OpusParams stereo_params;
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stereo_params.stereo = true;
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int frame_samples = voicecat::codec::opus_frame_samples(stereo_params);
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voicecat::codec::OpusEncoder enc;
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CHECK(enc.init(stereo_params));
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// Loud left channel, silent right channel — a real downmix would average them into a
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// single audible-but-quieter centered sample; true stereo should keep them distinct.
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std::vector<int16_t> interleaved(static_cast<size_t>(frame_samples) * 2);
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for (int i = 0; i < frame_samples; ++i) {
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float t = static_cast<float>(i) / 48000.0f;
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interleaved[i * 2] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * 440.0f * t) * 20000.0f);
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interleaved[i * 2 + 1] = 0;
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}
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uint8_t opus_buf[1500];
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int opus_len = enc.encode(interleaved.data(), frame_samples, opus_buf, sizeof(opus_buf));
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CHECK(opus_len > 0);
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engine.init_recv_stream(/*ssrc=*/1, stereo_params, /*user_id=*/0, /*stream_id=*/0,
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/*is_voice=*/false);
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voicecat::audio::JitterBuffer::Frame f;
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f.seq = 0;
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f.timestamp = 0;
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f.fec_present = false;
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f.payload.assign(opus_buf, opus_buf + opus_len);
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engine.push_recv_frame(1, std::move(f));
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std::vector<int16_t> out(static_cast<size_t>(frame_samples) * 2, 0);
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engine.mix_for_test(out.data(), static_cast<uint32_t>(frame_samples));
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// If the engine downmixed (old M3 behavior), every L/R pair would be identical (the
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// average of a loud sample and 0). True stereo should show a clear, consistent L != R
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// difference across the frame.
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int64_t total_diff = 0;
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for (int i = 0; i < frame_samples; ++i)
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total_diff += std::abs(static_cast<int>(out[i * 2]) - static_cast<int>(out[i * 2 + 1]));
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CHECK(total_diff > static_cast<int64_t>(frame_samples) * 1000); // well above decode noise
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engine.remove_stream(1);
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engine.stop();
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std::printf("test_stereo_mix: ok (total_diff=%lld)\n", static_cast<long long>(total_diff));
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}
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// ── 4a-2. Stereo screen-audio loopback capture (white-box, no audio hardware needed) ──
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// Regression for the mono-loopback bug: start_loopback_capture used to hardcode channels=1,
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// downmixing the system's stereo mix to mono before the encoder ever saw it (and on_capture_frame
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// then upmixed L=R to produce a fake-stereo bitstream). Now the loopback device opens in the
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// channel's mode (stereo when the channel is stereo), so the encoder receives real interleaved
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// L/R PCM and encodes it directly. This test drives feed_loopback_for_test with a loud-L /
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// silent-R stereo signal, encodes it (as on_capture_frame now does for channels==2), decodes,
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// and mixes — asserting L != R across the frame. A mono-downmixed-then-upmixed bitstream would
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// have L == R. Mirrors test_stereo_mix but routes the encode side through the loopback
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// accumulator path that the fix touches (feed_loopback_for_test → on_loopback's accumulator).
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#if defined(VOICECAT_HAS_LOOPBACK)
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static void test_loopback_stereo_capture() {
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voicecat::audio::AudioEngine engine;
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voicecat::audio::AudioParams p;
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p.sample_rate = 48000;
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p.capture_channels = 1; // mic path — irrelevant here; loopback has its own channel count
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p.playback_channels = 2; // stereo mix output (for mix_for_test below)
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p.frame_ms = 20;
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CHECK(engine.start(p)); // no capture_cb — the real mic (if any) won't touch capture_accum_
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voicecat::codec::OpusParams stereo_params;
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stereo_params.stereo = true;
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stereo_params.application = voicecat::codec::OpusApplication::Audio; // screen-audio channel
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stereo_params.bitrate_bps = 128000; // music/screen-audio channel default
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int frame_samples = voicecat::codec::opus_frame_samples(stereo_params);
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voicecat::codec::OpusEncoder enc;
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CHECK(enc.init(stereo_params));
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// Loud left channel, silent right — a real mono downmix would average them into a single
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// audible-but-quieter centered sample; true stereo keeps them distinct.
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std::vector<int16_t> interleaved(static_cast<size_t>(frame_samples) * 2);
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for (int i = 0; i < frame_samples; ++i) {
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float t = static_cast<float>(i) / 48000.0f;
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interleaved[i * 2] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * 440.0f * t) * 20000.0f);
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interleaved[i * 2 + 1] = 0;
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}
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// Encode via the loopback accumulator path: feed_loopback_for_test drives on_loopback's
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// accumulator and invokes the callback with channels=2 (the fix). The callback encodes
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// exactly as on_capture_frame does for real-stereo SCREEN_AUDIO PCM — no upmix.
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uint8_t opus_buf[1500];
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int opus_len = 0;
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int seen_channels = 0;
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auto cb = [&](int /*kind*/, const int16_t* pcm, int /*samples*/, int channels) {
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seen_channels = channels;
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if (channels == 2) {
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// The loopback accumulator must have preserved L/R distinctness pre-encode.
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int64_t pre_diff = 0;
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for (int i = 0; i < frame_samples; ++i)
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pre_diff += std::abs(static_cast<int>(pcm[i * 2]) - static_cast<int>(pcm[i * 2 + 1]));
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CHECK(pre_diff > static_cast<int64_t>(frame_samples) * 1000);
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}
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opus_len = enc.encode(pcm, frame_samples, opus_buf, sizeof(opus_buf));
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};
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engine.feed_loopback_for_test(interleaved.data(), frame_samples, 2, cb);
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CHECK(seen_channels == 2); // the loopback path reported stereo, not downmixed mono
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CHECK(opus_len > 0);
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// Decode + mix — same recv path as test_stereo_mix. A real stereo bitstream should
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// survive with L != R; a mono-downmixed-then-upmixed bitstream would have L == R.
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engine.init_recv_stream(/*ssrc=*/3, stereo_params, /*user_id=*/0, /*stream_id=*/0,
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/*is_voice=*/false);
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voicecat::audio::JitterBuffer::Frame f;
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f.seq = 0;
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f.timestamp = 0;
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f.fec_present = false;
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f.payload.assign(opus_buf, opus_buf + opus_len);
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engine.push_recv_frame(3, std::move(f));
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std::vector<int16_t> out(static_cast<size_t>(frame_samples) * 2, 0);
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engine.mix_for_test(out.data(), static_cast<uint32_t>(frame_samples));
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int64_t total_diff = 0;
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for (int i = 0; i < frame_samples; ++i)
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total_diff += std::abs(static_cast<int>(out[i * 2]) - static_cast<int>(out[i * 2 + 1]));
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CHECK(total_diff > static_cast<int64_t>(frame_samples) * 1000);
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engine.remove_stream(3);
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engine.stop();
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std::printf("test_loopback_stereo_capture: ok (total_diff=%lld, seen_channels=%d)\n",
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static_cast<long long>(total_diff), seen_channels);
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}
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#endif
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// ── 4b. Playout-clock re-sync after a late join / silence gap ────────────────────
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// Regression for the "talk indicator lit, no audio" bug: the playout clock free-runs (it
|
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// advances every callback via PLC), while the sender's frame timestamps only advance while it
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// is actually transmitting. After a silence gap or a late join the clock drifts past the jitter
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// buffer's 500 ms late-drop window, so every real frame is dropped-as-late and the stream is
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// permanently silent. on_playback must re-seed the clock to the earliest buffered frame.
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static void test_playout_resync() {
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voicecat::audio::AudioEngine engine;
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voicecat::audio::AudioParams p;
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p.sample_rate = 48000;
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p.capture_channels = 1;
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p.playback_channels = 2;
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p.frame_ms = 20;
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CHECK(engine.start(p));
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voicecat::codec::OpusParams mono_params; // mono = the mic path
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mono_params.stereo = false;
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int frame_samples = voicecat::codec::opus_frame_samples(mono_params);
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|
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voicecat::codec::OpusEncoder enc;
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CHECK(enc.init(mono_params));
|
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|
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std::vector<int16_t> sine(static_cast<size_t>(frame_samples));
|
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for (int i = 0; i < frame_samples; ++i) {
|
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float t = static_cast<float>(i) / 48000.0f;
|
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sine[i] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * 440.0f * t) * 20000.0f);
|
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}
|
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uint8_t opus_buf[1500];
|
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int opus_len = enc.encode(sine.data(), frame_samples, opus_buf, sizeof(opus_buf));
|
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CHECK(opus_len > 0);
|
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|
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engine.init_recv_stream(/*ssrc=*/2, mono_params, /*user_id=*/0, /*stream_id=*/0,
|
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/*is_voice=*/false);
|
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|
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std::vector<int16_t> out(static_cast<size_t>(frame_samples) * 2, 0);
|
||
|
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// Free-run the playout clock with an empty jitter buffer (PLC every callback) far past the
|
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// 500 ms late-drop window — this is what a silence gap / late join does in the field.
|
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for (int i = 0; i < 100; ++i) // ~100 frames @ 20 ms = ~2 s, well past 500 ms
|
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engine.mix_for_test(out.data(), static_cast<uint32_t>(frame_samples));
|
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|
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// Now a real frame arrives carrying a timestamp far behind the free-run clock. Without the
|
||
// re-sync it is dropped-as-late and playback stays silent; with it the clock snaps back and
|
||
// the frame is decoded and mixed.
|
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voicecat::audio::JitterBuffer::Frame f;
|
||
f.seq = 0;
|
||
f.timestamp = 0; // stream-relative start, now far behind the drifted playout clock
|
||
f.fec_present = false;
|
||
f.payload.assign(opus_buf, opus_buf + opus_len);
|
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engine.push_recv_frame(2, std::move(f));
|
||
|
||
std::fill(out.begin(), out.end(), 0);
|
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engine.mix_for_test(out.data(), static_cast<uint32_t>(frame_samples));
|
||
|
||
int64_t energy = 0;
|
||
for (int16_t s : out) energy += std::abs(static_cast<int>(s));
|
||
CHECK(energy > static_cast<int64_t>(frame_samples) * 1000); // audible, not PLC silence
|
||
|
||
engine.remove_stream(2);
|
||
engine.stop();
|
||
std::printf("test_playout_resync: ok (energy=%lld)\n", static_cast<long long>(energy));
|
||
}
|
||
|
||
// ── 5. Capture-frame accumulation (white-box, no audio hardware needed) ──────────
|
||
// Regression for the capture-side analogue of the playback ring fix: miniaudio's capture
|
||
// callback fires at the hardware period (commonly 480 samples on WASAPI shared mode), while
|
||
// opus_encode() requires exactly frame_samples_ (960). Sub-frame chunks must be accumulated;
|
||
// the callback must receive exactly 960-sample frames regardless of input chunk size.
|
||
static void test_capture_frame_accumulation() {
|
||
voicecat::audio::AudioEngine engine;
|
||
voicecat::audio::AudioParams p;
|
||
p.sample_rate = 48000;
|
||
p.capture_channels = 1;
|
||
p.frame_ms = 20; // frame_samples_ = 960
|
||
|
||
std::atomic<int> call_count{0};
|
||
std::atomic<bool> wrong_size{false};
|
||
constexpr int kExpected = 960;
|
||
|
||
// Start WITHOUT a capture callback: the real mic (if any) fires on_capture(), but
|
||
// on_capture() returns immediately when capture_cb_ is null, so capture_accum_ is
|
||
// never touched by the hardware thread. feed_capture_for_test() bypasses capture_cb_
|
||
// and drives the same accumulator directly with the explicit `cb` below — no races.
|
||
CHECK(engine.start(p));
|
||
|
||
auto cb = [&](int /*kind*/, const int16_t* /*pcm*/, int samples, int /*channels*/) {
|
||
++call_count;
|
||
if (samples != kExpected) wrong_size.store(true);
|
||
};
|
||
|
||
// 480-sample (10 ms) input — WASAPI's common hardware period on modern Windows.
|
||
// Two 480-chunk inputs → exactly one callback at 960.
|
||
std::vector<int16_t> h(480, 1000);
|
||
engine.feed_capture_for_test(h.data(), 480, cb);
|
||
CHECK(call_count.load() == 0); // half a frame — no callback yet
|
||
engine.feed_capture_for_test(h.data(), 480, cb);
|
||
CHECK(call_count.load() == 1); // one full frame — callback fired once
|
||
|
||
// Mis-aligned split: 240 then 720 → still exactly one callback.
|
||
std::vector<int16_t> s(240, 500), l(720, 500);
|
||
engine.feed_capture_for_test(s.data(), 240, cb);
|
||
CHECK(call_count.load() == 1);
|
||
engine.feed_capture_for_test(l.data(), 720, cb);
|
||
CHECK(call_count.load() == 2);
|
||
|
||
// 1920-sample input (two Opus frames) → exactly two callbacks.
|
||
std::vector<int16_t> d(1920, 800);
|
||
engine.feed_capture_for_test(d.data(), 1920, cb);
|
||
CHECK(call_count.load() == 4);
|
||
|
||
CHECK(!wrong_size.load());
|
||
engine.stop();
|
||
std::printf("test_capture_frame_accumulation: ok (callbacks=%d)\n", call_count.load());
|
||
}
|
||
|
||
// ── 2/3. VAD + PTT gate, through the real ABI against a real server ─────────────
|
||
static void test_vad_and_ptt_gate() {
|
||
auto tmp = std::filesystem::temp_directory_path() /
|
||
("vctest_vadptt_" + std::to_string(
|
||
std::chrono::steady_clock::now().time_since_epoch().count()));
|
||
std::filesystem::create_directories(tmp);
|
||
std::string data_dir = tmp.string();
|
||
|
||
std::atomic<uint16_t> bound_port{0};
|
||
std::mutex ready_mu;
|
||
std::condition_variable ready_cv;
|
||
bool ready{false};
|
||
|
||
voicecat::server::Config cfg;
|
||
cfg.data_dir = data_dir;
|
||
cfg.bind_port = 0;
|
||
cfg.media_port = 0;
|
||
cfg.server_name = "VoiceCat-VadPttTest";
|
||
cfg.allow_guests = true;
|
||
cfg.on_ready = [&](uint16_t p) {
|
||
bound_port.store(p);
|
||
{ std::lock_guard lk(ready_mu); ready = true; }
|
||
ready_cv.notify_all();
|
||
};
|
||
|
||
voicecat::server::Server server(cfg);
|
||
std::thread server_thread([&] { server.run(); });
|
||
|
||
{
|
||
std::unique_lock lk(ready_mu);
|
||
bool ok = ready_cv.wait_for(lk, std::chrono::seconds(10), [&] { return ready; });
|
||
if (!ok) {
|
||
std::printf("FAIL: server did not become ready within 10s\n");
|
||
++g_failures;
|
||
server.stop();
|
||
server_thread.join();
|
||
std::filesystem::remove_all(tmp);
|
||
return;
|
||
}
|
||
}
|
||
|
||
uint16_t port = bound_port.load();
|
||
std::printf("test_vad_and_ptt_gate: server ready on :%u\n", port);
|
||
|
||
EventStore evA;
|
||
evA.label = "A";
|
||
vc_callbacks cbA{on_event, nullptr, &evA};
|
||
vc_config cfgA{"test-A", "0.1", VC_LOG_OFF};
|
||
vc_client* clientA = vc_client_create(&cfgA, cbA);
|
||
CHECK(clientA != nullptr);
|
||
evA.client = clientA;
|
||
CHECK(vc_connect(clientA, "127.0.0.1", port) == VC_OK);
|
||
CHECK(vc_authenticate_guest(clientA, "VP-A") == VC_OK);
|
||
CHECK(wait_for(evA, [](EventStore& s) { return s.auth_ok; }, 8000));
|
||
CHECK(wait_for(evA, [](EventStore& s) { return s.channel_list_received; }, 3000));
|
||
|
||
CHECK(vc_join_voice(clientA) == VC_OK);
|
||
CHECK(wait_for(evA, [](EventStore& s) { return s.voice_subscribed; }, 5000));
|
||
|
||
EventStore evB;
|
||
evB.label = "B";
|
||
vc_callbacks cbB{on_event, nullptr, &evB};
|
||
vc_config cfgB{"test-B", "0.1", VC_LOG_OFF};
|
||
vc_client* clientB = vc_client_create(&cfgB, cbB);
|
||
CHECK(clientB != nullptr);
|
||
evB.client = clientB;
|
||
CHECK(vc_connect(clientB, "127.0.0.1", port) == VC_OK);
|
||
CHECK(vc_authenticate_guest(clientB, "VP-B") == VC_OK);
|
||
CHECK(wait_for(evB, [](EventStore& s) { return s.auth_ok; }, 8000));
|
||
CHECK(wait_for(evB, [](EventStore& s) { return s.channel_list_received; }, 3000));
|
||
|
||
CHECK(vc_join_voice(clientB) == VC_OK);
|
||
CHECK(wait_for(evB, [](EventStore& s) { return s.voice_subscribed; }, 5000));
|
||
|
||
uint32_t a_uid = 0;
|
||
{ std::lock_guard lk(evA.mu); a_uid = evA.self_user_id; }
|
||
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(500));
|
||
|
||
vc_stream_desc mic_desc{};
|
||
mic_desc.kind = VC_STREAM_MIC;
|
||
mic_desc.label = "mic";
|
||
uint32_t mic_sid = 0;
|
||
CHECK(vc_stream_start(clientA, &mic_desc, &mic_sid) == VC_OK);
|
||
CHECK(wait_for(evB, [](EventStore& s) { return s.saw_stream_started; }, 5000));
|
||
CHECK(wait_for(evA, [](EventStore& s) { return s.saw_stream_started; }, 5000));
|
||
|
||
// ── 2a. VAD mode (default), silent PCM: must NOT reach B as a talking edge ──
|
||
CHECK(vc_set_input_mode(clientA, VC_INPUT_VOICE_ACTIVATION) == VC_OK);
|
||
for (int i = 0; i < 15; ++i) {
|
||
auto silence = make_silence_frame();
|
||
CHECK(vc_test_inject_capture(clientA, mic_sid, silence.data(), silence.size()) == VC_OK);
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(20));
|
||
}
|
||
CHECK(!saw_talking_true(evB, a_uid, mic_sid, 0));
|
||
|
||
// ── 2b. VAD mode, loud PCM: must reach B as a talking edge ──────────────────
|
||
size_t mark = talk_event_count(evB);
|
||
for (int i = 0; i < 20; ++i) {
|
||
auto loud = make_sine_frame(i, 440.0f);
|
||
CHECK(vc_test_inject_capture(clientA, mic_sid, loud.data(), loud.size()) == VC_OK);
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(20));
|
||
}
|
||
CHECK(wait_for(evB, [&](EventStore& s) {
|
||
for (size_t i = mark; i < s.talk_events.size(); ++i) {
|
||
auto& e = s.talk_events[i];
|
||
if (e.user_id == a_uid && e.stream_id == mic_sid && e.talking) return true;
|
||
}
|
||
return false;
|
||
}, 3000));
|
||
|
||
// ── 3a. PTT mode, key up: loud PCM must NOT reach B as a new talking edge ───
|
||
CHECK(vc_set_input_mode(clientA, VC_INPUT_PUSH_TO_TALK) == VC_OK);
|
||
CHECK(vc_set_push_to_talk(clientA, 0) == VC_OK);
|
||
// Let any in-flight VAD-driven talking state lapse (hang-time ~300ms) before measuring.
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(500));
|
||
mark = talk_event_count(evB);
|
||
for (int i = 0; i < 20; ++i) {
|
||
auto loud = make_sine_frame(i, 440.0f);
|
||
CHECK(vc_test_inject_capture(clientA, mic_sid, loud.data(), loud.size()) == VC_OK);
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(20));
|
||
}
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(200));
|
||
CHECK(!saw_talking_true(evB, a_uid, mic_sid, mark));
|
||
|
||
// ── 3b. PTT mode, key down: loud PCM must reach B as a talking edge ─────────
|
||
CHECK(vc_set_push_to_talk(clientA, 1) == VC_OK);
|
||
mark = talk_event_count(evB);
|
||
for (int i = 0; i < 20; ++i) {
|
||
auto loud = make_sine_frame(i, 440.0f);
|
||
CHECK(vc_test_inject_capture(clientA, mic_sid, loud.data(), loud.size()) == VC_OK);
|
||
std::this_thread::sleep_for(std::chrono::milliseconds(20));
|
||
}
|
||
CHECK(wait_for(evB, [&](EventStore& s) {
|
||
for (size_t i = mark; i < s.talk_events.size(); ++i) {
|
||
auto& e = s.talk_events[i];
|
||
if (e.user_id == a_uid && e.stream_id == mic_sid && e.talking) return true;
|
||
}
|
||
return false;
|
||
}, 3000));
|
||
|
||
{ std::lock_guard lk(evA.mu); CHECK(!evA.disconnected); }
|
||
{ std::lock_guard lk(evB.mu); CHECK(!evB.disconnected); }
|
||
|
||
vc_disconnect(clientA);
|
||
vc_disconnect(clientB);
|
||
vc_client_destroy(clientA);
|
||
vc_client_destroy(clientB);
|
||
|
||
server.stop();
|
||
server_thread.join();
|
||
std::filesystem::remove_all(tmp);
|
||
|
||
std::printf("test_vad_and_ptt_gate: done\n");
|
||
}
|
||
|
||
// ── 5. Stereo mic capture (vc_set_capture_channels) ───────────────────────────
|
||
// Verifies that the mic capture accumulator path handles stereo (channels=2) correctly:
|
||
// the accumulator is sized to frame_samples_*capture_channels, on_capture forwards the
|
||
// correct channel count, and the encoder receives real interleaved L/R PCM (not a mono
|
||
// downmix). Mirrors test_loopback_stereo_capture but routes through the mic capture
|
||
// accumulator (feed_capture_for_test with channels=2) instead of the loopback path.
|
||
// This is the headless CI test for the iOS stereo built-in mic feature (Part D).
|
||
static void test_stereo_mic_capture() {
|
||
voicecat::audio::AudioEngine engine;
|
||
voicecat::audio::AudioParams p;
|
||
p.sample_rate = 48000;
|
||
p.capture_channels = 2; // stereo mic capture (vc_set_capture_channels path)
|
||
p.playback_channels = 2; // stereo mix output (for mix_for_test below)
|
||
p.frame_ms = 20;
|
||
CHECK(engine.start(p)); // no capture_cb — the real mic (if any) won't touch capture_accum_
|
||
|
||
voicecat::codec::OpusParams stereo_params;
|
||
stereo_params.stereo = true;
|
||
stereo_params.application = voicecat::codec::OpusApplication::Voip; // mic stream
|
||
stereo_params.bitrate_bps = 64000; // mic default
|
||
int frame_samples = voicecat::codec::opus_frame_samples(stereo_params);
|
||
|
||
voicecat::codec::OpusEncoder enc;
|
||
CHECK(enc.init(stereo_params));
|
||
|
||
// Loud left channel, silent right — a mono downmix would average them; true stereo
|
||
// keeps them distinct (same signal as test_loopback_stereo_capture).
|
||
std::vector<int16_t> interleaved(static_cast<size_t>(frame_samples) * 2);
|
||
for (int i = 0; i < frame_samples; ++i) {
|
||
float t = static_cast<float>(i) / 48000.0f;
|
||
interleaved[i * 2] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * 440.0f * t) * 20000.0f);
|
||
interleaved[i * 2 + 1] = 0;
|
||
}
|
||
|
||
// Encode via the mic capture accumulator path: feed_capture_for_test with channels=2
|
||
// drives on_capture's accumulator and invokes the callback with channels=2. The callback
|
||
// encodes exactly as on_capture_frame does for channels==2 — direct stereo, no upmix.
|
||
uint8_t opus_buf[1500];
|
||
int opus_len = 0;
|
||
int seen_channels = 0;
|
||
auto cb = [&](int /*kind*/, const int16_t* pcm, int /*samples*/, int channels) {
|
||
seen_channels = channels;
|
||
if (channels == 2) {
|
||
// The capture accumulator must have preserved L/R distinctness pre-encode.
|
||
int64_t pre_diff = 0;
|
||
for (int i = 0; i < frame_samples; ++i)
|
||
pre_diff += std::abs(static_cast<int>(pcm[i * 2]) - static_cast<int>(pcm[i * 2 + 1]));
|
||
CHECK(pre_diff > static_cast<int64_t>(frame_samples) * 1000);
|
||
}
|
||
opus_len = enc.encode(pcm, frame_samples, opus_buf, sizeof(opus_buf));
|
||
};
|
||
engine.feed_capture_for_test(interleaved.data(), frame_samples, 2, cb);
|
||
CHECK(seen_channels == 2); // the mic capture path reported stereo, not mono
|
||
CHECK(opus_len > 0);
|
||
|
||
// Decode + mix — same recv path as test_stereo_mix. A real stereo bitstream should
|
||
// survive with L != R; a mono-downmixed-then-upmixed bitstream would have L == R.
|
||
engine.init_recv_stream(/*ssrc=*/5, stereo_params, /*user_id=*/0, /*stream_id=*/0,
|
||
/*is_voice=*/false);
|
||
voicecat::audio::JitterBuffer::Frame f;
|
||
f.seq = 0;
|
||
f.timestamp = 0;
|
||
f.fec_present = false;
|
||
f.payload.assign(opus_buf, opus_buf + opus_len);
|
||
engine.push_recv_frame(5, std::move(f));
|
||
|
||
std::vector<int16_t> out(static_cast<size_t>(frame_samples) * 2, 0);
|
||
engine.mix_for_test(out.data(), static_cast<uint32_t>(frame_samples));
|
||
|
||
int64_t total_diff = 0;
|
||
for (int i = 0; i < frame_samples; ++i)
|
||
total_diff += std::abs(static_cast<int>(out[i * 2]) - static_cast<int>(out[i * 2 + 1]));
|
||
CHECK(total_diff > static_cast<int64_t>(frame_samples) * 1000);
|
||
|
||
engine.remove_stream(5);
|
||
engine.stop();
|
||
std::printf("test_stereo_mic_capture: ok (total_diff=%lld, seen_channels=%d)\n",
|
||
static_cast<long long>(total_diff), seen_channels);
|
||
}
|
||
|
||
// ── 6. Stereo mic capture on a MONO channel (downmix safety) ──────────────────
|
||
// A stereo mic (vc_set_capture_channels=2) can be enabled while on a mono channel. The mic
|
||
// then delivers interleaved L/R, but the channel's Opus encoder is mono. encode_and_send_frame
|
||
// must fold L/R to mono before encoding — handing interleaved pairs straight to a mono
|
||
// opus_encode makes it read 2× the samples it should (wrong pitch / garbage). This mirrors that
|
||
// fold and proves the result is a valid mono bitstream that decodes to the expected averaged
|
||
// signal, rather than half-length junk.
|
||
static void test_stereo_mic_mono_channel() {
|
||
voicecat::codec::OpusParams mono_params;
|
||
mono_params.stereo = false; // mono channel — encoder is mono
|
||
mono_params.application = voicecat::codec::OpusApplication::Voip;
|
||
mono_params.bitrate_bps = 64000;
|
||
const int frame_samples = voicecat::codec::opus_frame_samples(mono_params);
|
||
|
||
voicecat::codec::OpusEncoder enc;
|
||
CHECK(enc.init(mono_params));
|
||
|
||
// Loud left, silent right — folding (L+R)/2 yields a half-amplitude tone on every sample.
|
||
std::vector<int16_t> interleaved(static_cast<size_t>(frame_samples) * 2);
|
||
for (int i = 0; i < frame_samples; ++i) {
|
||
float t = static_cast<float>(i) / 48000.0f;
|
||
interleaved[i * 2] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * 440.0f * t) * 20000.0f);
|
||
interleaved[i * 2 + 1] = 0;
|
||
}
|
||
|
||
// Fold exactly as encode_and_send_frame does for a stereo frame on a mono channel.
|
||
std::vector<int16_t> folded(frame_samples);
|
||
for (int i = 0; i < frame_samples; ++i)
|
||
folded[i] = static_cast<int16_t>(
|
||
(static_cast<int32_t>(interleaved[i * 2]) + static_cast<int32_t>(interleaved[i * 2 + 1])) / 2);
|
||
|
||
uint8_t opus_buf[1500];
|
||
int opus_len = enc.encode(folded.data(), frame_samples, opus_buf, sizeof(opus_buf));
|
||
CHECK(opus_len > 0);
|
||
|
||
// Decode mono and verify a full-length frame with real energy survived (a garbage half-read
|
||
// would either fail to decode the full frame_samples or come back near-silent / wrong length).
|
||
voicecat::codec::OpusDecoder dec;
|
||
CHECK(dec.init(mono_params));
|
||
std::vector<int16_t> decoded(frame_samples, 0);
|
||
int dec_samples = dec.decode(opus_buf, opus_len, decoded.data(), frame_samples);
|
||
CHECK(dec_samples == frame_samples);
|
||
|
||
int64_t energy = 0;
|
||
for (int i = 0; i < frame_samples; ++i) energy += std::abs(static_cast<int>(decoded[i]));
|
||
CHECK(energy > static_cast<int64_t>(frame_samples) * 500); // clearly audible, not silence
|
||
|
||
std::printf("test_stereo_mic_mono_channel: ok (opus_len=%d, energy=%lld)\n",
|
||
opus_len, static_cast<long long>(energy));
|
||
}
|
||
|
||
int main() {
|
||
test_device_enumeration();
|
||
test_stereo_mix();
|
||
#if defined(VOICECAT_HAS_LOOPBACK)
|
||
test_loopback_stereo_capture();
|
||
#endif
|
||
test_stereo_mic_capture();
|
||
test_stereo_mic_mono_channel();
|
||
test_playout_resync();
|
||
test_capture_frame_accumulation();
|
||
test_vad_and_ptt_gate();
|
||
|
||
if (g_failures == 0) {
|
||
std::printf("vad_ptt_devices: all checks passed\n");
|
||
return 0;
|
||
}
|
||
std::printf("vad_ptt_devices: %d failure(s)\n", g_failures);
|
||
return 1;
|
||
}
|