feat(audio): channel sample_rate caps Opus bandwidth (narrowband/wideband)
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The per-channel sample_rate field was inert after pinning the codec to
48 kHz. Make it meaningful without changing the 48 kHz clock: carry it as
OpusParams::max_bandwidth_hz and apply OPUS_SET_MAX_BANDWIDTH in
OpusEncoder::init (8000->narrowband, 16000->wideband, 24000->super-wideband,
48000->full). A low-bitrate room can now shed out-of-band content while
every endpoint keeps a single 48 kHz clock.

Make sample_rate channel-authoritative on the server: conn_session no
longer overrides effective sample_rate with the client's always-48000
request (it now behaves like frame_ms/mode). vc_get_stream_audio_config
reports the channel's configured rate for own streams too.

New ctest channel_samplerate: a 7 kHz tone is attenuated ~1000x on an
8 kHz (narrowband) channel vs a 48 kHz (full-band) channel, proving the cap
is in effect. ctest --preset dev 26/26.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
This commit is contained in:
2026-06-22 16:56:49 +02:00
parent a460009a2f
commit e155e342f4
9 changed files with 379 additions and 15 deletions

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@@ -8,7 +8,7 @@ and what's next* read [`PROGRESS.md`](PROGRESS.md); for *design* read [`docs/`](
> server-mute, channel CRUD, in-app account management, disconnect/keepalive/reaper. Windows
> WinForms C# client shipped (M4). **macOS AppKit client shipped** — `VoiceCatMac.xcodeproj`
> at `clients/apple/macOS/`. **iOS SwiftUI client shipped** — `VoiceCatiOS.xcodeproj` at
> `clients/apple/iOS/`. `ctest --preset dev` green — 25/25 tests.
> `clients/apple/iOS/`. `ctest --preset dev` green — 26/26 tests.
> External PCM feed/tap API (`vc_stream_feed_pcm` + `vc_set_pcm_sink`) shipped.
> **Screen-audio sharing shipped on macOS (ScreenCaptureKit) and iOS (ReplayKit Broadcast
> Upload Extension → host App Group ring → `vc_stream_feed_pcm`).** See [`PROGRESS.md`](PROGRESS.md).

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@@ -442,7 +442,19 @@ up instantly. Newest status at the top.
## Recent completed work
All items below are `[x]` done; `ctest --preset dev` 25/25 on Windows after all.
All items below are `[x]` done; `ctest --preset dev` 26/26 on Windows after all.
- **Per-channel sample_rate as a bandwidth cap** (2026-06-22): the channel `sample_rate` field
was inert (the codec is pinned to 48 kHz). Made it meaningful without changing the 48 kHz
clock: it's carried as `OpusParams::max_bandwidth_hz` and applied via `OPUS_SET_MAX_BANDWIDTH`
in `OpusEncoder::init` (8000→narrowband … 48000→full). Made it **channel-authoritative** on
the server (`conn_session.cpp` no longer overrides effective `sample_rate` with the client's
always-48000 request — like `frame_ms`/`mode`). `vc_get_stream_audio_config` now reports the
channel's configured rate for own streams too. New ctest `channel_samplerate`: a 7 kHz tone is
attenuated ~1000× on an 8 kHz channel vs a 48 kHz channel. Files: `opus_codec.{h,cpp}`,
`client.cpp`, `server/src/conn_session.cpp`, `docs/voice.md`, `tests/test_channel_samplerate.cpp`,
`tests/CMakeLists.txt`. (Future: a true non-48k stack is possible but unnecessary — 48 kHz is
what nearly all hard/software runs at; the bandwidth cap covers the narrowband use case.)
- **Non-20ms channel frame_ms fix** (2026-06-22): the AudioEngine capture clock is fixed at
48 kHz / 20 ms (960-sample frames), but a channel may set any Opus `frame_ms` (2.5…60 ms,

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@@ -4,6 +4,19 @@ namespace voicecat::codec {
#ifdef VOICECAT_HAS_OPUS
// Map an intended channel/capture sample rate (Hz) to the Opus max-bandwidth constant. The
// codec always runs at 48 kHz internally (docs/voice.md §3); this caps the bandwidth the
// encoder will select so a channel can request narrowband/wideband audio for low-bitrate rooms.
// 0 (unset) and >= 48000 map to FULLBAND, which is the encoder default (i.e. a no-op cap).
static opus_int32 opus_max_bandwidth_for(uint32_t rate_hz) {
if (rate_hz == 0) return OPUS_BANDWIDTH_FULLBAND;
if (rate_hz <= 8000) return OPUS_BANDWIDTH_NARROWBAND; // ~4 kHz audio
if (rate_hz <= 12000) return OPUS_BANDWIDTH_MEDIUMBAND; // ~6 kHz
if (rate_hz <= 16000) return OPUS_BANDWIDTH_WIDEBAND; // ~8 kHz
if (rate_hz <= 24000) return OPUS_BANDWIDTH_SUPERWIDEBAND; // ~12 kHz
return OPUS_BANDWIDTH_FULLBAND; // ~20 kHz
}
// ── OpusEncoder ──────────────────────────────────────────────────────────────
bool OpusEncoder::init(const OpusParams& p) {
@@ -27,6 +40,7 @@ bool OpusEncoder::init(const OpusParams& p) {
}
opus_encoder_ctl(enc_, OPUS_SET_BITRATE(static_cast<opus_int32>(p.bitrate_bps)));
opus_encoder_ctl(enc_, OPUS_SET_MAX_BANDWIDTH(opus_max_bandwidth_for(p.max_bandwidth_hz)));
opus_encoder_ctl(enc_, OPUS_SET_COMPLEXITY(static_cast<opus_int32>(p.complexity)));
opus_encoder_ctl(enc_, OPUS_SET_INBAND_FEC(p.fec ? 1 : 0));
opus_encoder_ctl(enc_, OPUS_SET_DTX(p.dtx ? 1 : 0));

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@@ -26,6 +26,11 @@ enum class OpusApplication {
struct OpusParams {
uint32_t sample_rate = 48000;
// Intended channel/capture sample rate (Hz), used ONLY to cap the encoder's audio bandwidth
// (narrowband/wideband/…) via OPUS_SET_MAX_BANDWIDTH. The codec always runs at 48 kHz
// internally (docs/voice.md §3); this lets a low-bitrate channel constrain encoded bandwidth
// without changing the PCM clock. 0 = unset → full band. Decoder ignores it.
uint32_t max_bandwidth_hz = 0;
uint32_t bitrate_bps = 24000;
uint32_t frame_ms = 20;
bool stereo = false;

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@@ -946,10 +946,12 @@ voicecat::codec::OpusParams opus_params_from_audio_config(const voicecat::v1::Au
voicecat::codec::OpusParams p;
// Opus always runs at 48 kHz internally (docs/voice.md §3): the whole AudioEngine clock is
// 48 kHz and external PCM is fed at 48 kHz, so the codec must match regardless of what a
// channel advertises. Honoring a non-48k effective sample_rate here would create an encoder
// expecting e.g. 16k PCM while being fed 48k frames — wrong pitch/duration. The wire
// sample_rate field mainly tags narrowband intent; Opus handles that via bitrate at 48k.
// channel advertises. Honoring a non-48k effective sample_rate as the codec rate would
// create an encoder expecting e.g. 16k PCM while being fed 48k frames — wrong pitch/duration.
// Instead the channel's sample_rate is carried as max_bandwidth_hz and caps the encoder's
// selected audio bandwidth (narrowband/wideband/…) — a low-bitrate room still benefits.
p.sample_rate = 48000;
p.max_bandwidth_hz = a.sample_rate(); // 0 = unset → full band
p.bitrate_bps = a.bitrate_bps() ? a.bitrate_bps() : 24000;
p.frame_ms = a.frame_ms() ? a.frame_ms() : 20;
p.stereo = (a.mode() == voicecat::v1::MODE_STEREO);
@@ -1524,7 +1526,9 @@ vc_result vc_client::get_stream_audio_config(uint32_t user_id, uint32_t stream_i
const auto& p = ls->effective_params;
out->codec = 0;
out->mode = p.stereo ? 1u : 0u;
out->sample_rate = p.sample_rate;
// Report the channel's configured sample_rate (carried as max_bandwidth_hz), not the
// fixed 48 kHz codec clock — matches what the remote-stream path below reports.
out->sample_rate = p.max_bandwidth_hz ? p.max_bandwidth_hz : p.sample_rate;
out->bitrate_bps = p.bitrate_bps;
out->frame_ms = p.frame_ms;
out->application = static_cast<uint32_t>(p.application);

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@@ -101,8 +101,13 @@ message AudioConfig {
Guidance baked into defaults / docs:
- **Sample rate: always run Opus at 48 kHz internally.** Opus resamples internally anyway;
48 kHz avoids surprises. The `sample_rate` field mainly constrains capture/narrowband
modes for very low bitrate channels. Default **48000**.
48 kHz avoids surprises, and the whole audio stack (capture, `vc_stream_feed_pcm`, mixing,
playback) runs at 48 kHz. The per-channel `sample_rate` field is **channel-authoritative**
(not a client request) and does *not* change the codec/PCM clock — it caps the encoder's
audio bandwidth via `OPUS_SET_MAX_BANDWIDTH` (8000 → narrowband ~4 kHz, 16000 → wideband
~8 kHz, 24000 → super-wideband ~12 kHz, 48000 → full ~20 kHz). This lets a low-bitrate room
shed out-of-band content while every endpoint keeps a single 48 kHz clock. Default **48000**
(full band). See `OpusEncoder::init` and `vc_client::opus_params_from_audio_config`.
- **Frame size: 20 ms default.** Smaller (10 ms) lowers latency at the cost of more
per-packet overhead and CPU; larger (40/60 ms) improves efficiency and loss resilience at
the cost of latency. Expose it per channel for "low-latency talk" vs "stable music" rooms.

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@@ -531,21 +531,20 @@ void ConnSession::handle_stream_announce(uint64_t req_id,
res->set_ssrc(ssrc);
// Per-channel AudioConfig is authoritative (docs/voice.md §3): the channel's mode/
// frame_ms/application/fec/dtx/complexity/expected_packet_loss apply to every stream
// announced into it, regardless of kind. bitrate_bps is clamped (not overridden) to the
// channel's ceiling so a client may still request less. sample_rate stays
// client-requested-or-48000 — everything runs at 48kHz internally per voice.md §3.
// sample_rate/frame_ms/application/fec/dtx/complexity/expected_packet_loss apply to every
// stream announced into it, regardless of kind. bitrate_bps is clamped (not overridden) to
// the channel's ceiling so a client may still request less. sample_rate is taken from the
// channel verbatim (copied via *eff below) — the codec always runs at 48kHz internally, but
// a sub-48k value caps the encoder's audio bandwidth (narrowband/wideband; see
// OpusEncoder::init), so it's a channel policy, not a client choice.
auto* eff = res->mutable_effective_audio();
auto chan_cfg = registry_->channel_audio_config(registry_->user_channel(user_id_.load()));
uint32_t requested_bps =
msg.has_requested_audio() ? msg.requested_audio().bitrate_bps() : 0;
uint32_t requested_rate =
msg.has_requested_audio() ? msg.requested_audio().sample_rate() : 0;
if (chan_cfg) {
*eff = *chan_cfg;
eff->set_bitrate_bps(requested_bps > 0 ? std::min(requested_bps, chan_cfg->bitrate_bps())
: chan_cfg->bitrate_bps());
eff->set_sample_rate(requested_rate > 0 ? requested_rate : 48000);
} else if (msg.has_requested_audio()) {
*eff = msg.requested_audio();
} else {

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@@ -211,4 +211,13 @@ if(VOICECAT_USE_VCPKG_DEPS)
target_include_directories(test_frame_ms_reframe PRIVATE ${VC_TEST_INTERNAL_INCLUDES})
add_test(NAME frame_ms_reframe COMMAND test_frame_ms_reframe)
set_tests_properties(frame_ms_reframe PROPERTIES TIMEOUT 90)
# Per-channel sample_rate as an Opus bandwidth cap (OPUS_SET_MAX_BANDWIDTH): a 7 kHz tone is
# attenuated on an 8 kHz (narrowband) channel vs a 48 kHz (full-band) channel.
add_executable(test_channel_samplerate test_channel_samplerate.cpp)
target_link_libraries(test_channel_samplerate PRIVATE voicecat::server)
target_compile_features(test_channel_samplerate PRIVATE cxx_std_20)
target_include_directories(test_channel_samplerate PRIVATE ${VC_TEST_INTERNAL_INCLUDES})
add_test(NAME channel_samplerate COMMAND test_channel_samplerate)
set_tests_properties(channel_samplerate PROPERTIES TIMEOUT 90)
endif()

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@@ -0,0 +1,316 @@
/*
* test_channel_samplerate — per-channel sample_rate as an Opus bandwidth cap.
*
* The codec always runs at 48 kHz internally (docs/voice.md §3); a channel's sample_rate is
* carried as OPUS_SET_MAX_BANDWIDTH so a low-bitrate / narrowband room can constrain the encoded
* audio bandwidth without changing the PCM clock. This verifies the cap is actually in effect:
*
* - A channel at sample_rate = 8000 (NARROWBAND, ~4 kHz audio) and a channel at 48000
* (FULLBAND) are each fed an identical 7 kHz tone (well above the narrowband edge).
* - The narrowband channel's decoded energy must be substantially lower — the only difference
* between the two runs is the channel's sample_rate, so a lower energy proves the bandwidth
* cap filtered the out-of-band tone.
* - vc_get_stream_audio_config reports the channel's configured sample_rate (not 48000).
*/
#include <cstdio>
#ifdef VOICECAT_HAS_NET
#include <atomic>
#include <chrono>
#include <cmath>
#include <condition_variable>
#include <cstring>
#include <filesystem>
#include <mutex>
#include <string>
#include <thread>
#include <vector>
#include "voicecat.h"
#include "server.h"
#include "db.h"
static int g_failures = 0;
#define CHECK(cond) \
do { if (!(cond)) { \
std::printf("FAIL [%s:%d]: %s\n", __FILE__, __LINE__, #cond); \
++g_failures; \
}} while (0)
struct EventStore {
std::mutex mu;
std::condition_variable cv;
bool auth_ok{false};
uint32_t self_user_id{0};
bool channel_list_received{false};
bool generic_result_received{false};
bool generic_ok{false};
std::vector<std::pair<uint32_t, uint32_t>> streams_started; // (user_id, stream_id)
vc_client* client{nullptr};
const char* label{nullptr};
};
static void on_event(void* user, const vc_event* ev) {
auto* s = static_cast<EventStore*>(user);
std::lock_guard lk(s->mu);
switch (ev->type) {
case VC_EVENT_SERVER_IDENTITY: vc_confirm_server_identity(s->client, 1); break;
case VC_EVENT_AUTH_RESULT:
s->auth_ok = (ev->result == VC_OK);
s->self_user_id = ev->user_id;
break;
case VC_EVENT_CHANNEL_LIST: s->channel_list_received = true; break;
case VC_EVENT_GENERIC_RESULT:
s->generic_result_received = true;
s->generic_ok = (ev->result == VC_OK);
break;
case VC_EVENT_STREAM_STARTED: s->streams_started.emplace_back(ev->user_id, ev->stream_id); break;
default: break;
}
s->cv.notify_all();
}
template <typename Pred>
static bool wait_for(EventStore& s, Pred pred, int timeout_ms) {
auto deadline = std::chrono::steady_clock::now() + std::chrono::milliseconds(timeout_ms);
std::unique_lock lk(s.mu);
return s.cv.wait_until(lk, deadline, [&] { return pred(s); });
}
static bool connect_guest(vc_client*& client, const char* name, const char* label,
uint16_t port, EventStore& ev) {
vc_callbacks cb{on_event, nullptr, &ev};
vc_config cfg{label, "0.1", VC_LOG_OFF};
client = vc_client_create(&cfg, cb);
if (!client) return false;
ev.client = client;
ev.label = label;
if (vc_connect(client, "127.0.0.1", port) != VC_OK) return false;
if (vc_authenticate_guest(client, name) != VC_OK) return false;
if (!wait_for(ev, [](EventStore& s) { return s.auth_ok; }, 8000)) return false;
if (!wait_for(ev, [](EventStore& s) { return s.channel_list_received; }, 3000)) return false;
return true;
}
// 7 kHz tone — above the NARROWBAND (~4 kHz) edge, within FULLBAND.
static std::vector<int16_t> make_tone(int n, float hz) {
std::vector<int16_t> pcm(static_cast<size_t>(n));
for (int i = 0; i < n; ++i) {
float t = static_cast<float>(i) / 48000.0f;
pcm[i] = static_cast<int16_t>(std::sin(2.0f * 3.14159265f * hz * t) * 16000.0f);
}
return pcm;
}
struct SinkData {
std::mutex mu;
std::condition_variable cv;
std::atomic<int> call_count{0};
int64_t total_energy = 0;
};
static void pcm_sink(void* user, uint32_t, uint32_t,
const int16_t* pcm, size_t n, uint32_t channels, uint32_t) {
auto* d = static_cast<SinkData*>(user);
std::lock_guard lk(d->mu);
for (size_t i = 0; i < n * channels; ++i)
d->total_energy += std::abs(static_cast<int>(pcm[i]));
d->call_count.fetch_add(1, std::memory_order_relaxed);
d->cv.notify_all();
}
static bool sink_wait(SinkData& d, int timeout_ms) {
auto deadline = std::chrono::steady_clock::now() + std::chrono::milliseconds(timeout_ms);
std::unique_lock lk(d.mu);
return d.cv.wait_until(lk, deadline, [&] { return d.call_count.load() > 0; });
}
static uint32_t make_channel(vc_client* admin, EventStore& evAdmin, const char* name,
uint32_t sample_rate) {
vc_channel_info ch{};
ch.name = name;
ch.audio.codec = 0; // OPUS
ch.audio.mode = 0; // mono
ch.audio.sample_rate = sample_rate;
ch.audio.bitrate_bps = 32000;
ch.audio.frame_ms = 20;
ch.audio.fec = 1;
ch.audio.complexity = 10;
{ std::lock_guard lk(evAdmin.mu); evAdmin.generic_result_received = false; }
if (vc_create_channel(admin, &ch) != VC_OK) return 0;
if (!wait_for(evAdmin, [](EventStore& s) { return s.generic_result_received; }, 5000)) return 0;
{ std::lock_guard lk(evAdmin.mu); if (!evAdmin.generic_ok) return 0; }
vc_channel_list cl{};
if (vc_list_channels(admin, &cl) != VC_OK) return 0;
uint32_t id = 0;
for (size_t i = 0; i < cl.count; ++i)
if (cl.items[i].name && std::string(cl.items[i].name) == name) { id = cl.items[i].id; break; }
vc_free_channel_list(&cl);
return id;
}
// Feed a 7 kHz tone through `channel_id` and return the decoded energy the sink observed.
// Also asserts vc_get_stream_audio_config reports `expect_sr`.
static int64_t run_case(uint16_t port, vc_client* admin, EventStore& evAdmin,
uint32_t channel_id, uint32_t expect_sr, const char* tag) {
EventStore evA, evB;
vc_client *clientA = nullptr, *clientB = nullptr;
CHECK(connect_guest(clientA, "SrA", "sr-a", port, evA));
CHECK(connect_guest(clientB, "SrB", "sr-b", port, evB));
int64_t energy = -1;
if (!clientA || !clientB) goto cleanup;
{
uint32_t a_uid = 0, b_uid = 0;
{ std::lock_guard lk(evA.mu); a_uid = evA.self_user_id; }
{ std::lock_guard lk(evB.mu); b_uid = evB.self_user_id; }
CHECK(vc_move_user(admin, a_uid, channel_id) == VC_OK);
CHECK(vc_move_user(admin, b_uid, channel_id) == VC_OK);
std::this_thread::sleep_for(std::chrono::milliseconds(500));
SinkData sink;
CHECK(vc_set_pcm_sink(clientB, pcm_sink, &sink) == VC_OK);
vc_stream_desc desc{};
desc.kind = VC_STREAM_MIC;
uint32_t a_sid = 0;
CHECK(vc_stream_start(clientA, &desc, &a_sid) == VC_OK);
bool b_saw_a = wait_for(evB, [&](EventStore& s) {
for (auto& [uid, sid] : s.streams_started)
if (uid == a_uid) return true;
return false;
}, 5000);
CHECK(b_saw_a);
std::this_thread::sleep_for(std::chrono::milliseconds(400));
vc_audio_config ac{};
CHECK(vc_get_stream_audio_config(clientA, a_uid, a_sid, &ac) == VC_OK);
CHECK(ac.sample_rate == expect_sr);
auto tone = make_tone(960, 7000.0f);
for (int i = 0; i < 300; ++i)
CHECK(vc_stream_feed_pcm(clientA, a_sid, tone.data(), 960, 1) == VC_OK);
CHECK(sink_wait(sink, 5000));
std::this_thread::sleep_for(std::chrono::milliseconds(1500));
energy = sink.total_energy;
std::printf("test_channel_samplerate[%s]: sr=%u calls=%d energy=%lld\n",
tag, expect_sr, sink.call_count.load(), static_cast<long long>(energy));
CHECK(sink.call_count.load() > 0);
vc_stream_stop(clientA, a_sid);
}
cleanup:
if (clientA) { vc_disconnect(clientA); vc_client_destroy(clientA); }
if (clientB) { vc_disconnect(clientB); vc_client_destroy(clientB); }
return energy;
}
int main() {
auto tmp = std::filesystem::temp_directory_path() /
("vctest_chansr_" + std::to_string(
std::chrono::steady_clock::now().time_since_epoch().count()));
std::filesystem::create_directories(tmp);
std::string data_dir = tmp.string();
{
voicecat::server::Database db(data_dir + "/voicecat.db");
std::string err;
if (!db.open(err) || !db.create_account("admin", "pass", true, err)) {
std::printf("FAIL: provision admin: %s\n", err.c_str());
std::filesystem::remove_all(tmp);
return 1;
}
}
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-ChanSrTest";
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);
if (!ready_cv.wait_for(lk, std::chrono::seconds(10), [&] { return ready; })) {
std::printf("FAIL: server did not start\n");
server.stop(); server_thread.join();
std::filesystem::remove_all(tmp);
return 1;
}
}
uint16_t port = bound_port.load();
std::printf("channel_samplerate: server ready on :%u\n", port);
EventStore evAdmin;
evAdmin.label = "admin";
vc_callbacks cbAdmin{on_event, nullptr, &evAdmin};
vc_config cfgAdmin{"chansr-admin", "0.1", VC_LOG_OFF};
vc_client* admin = vc_client_create(&cfgAdmin, cbAdmin);
CHECK(admin != nullptr);
evAdmin.client = admin;
CHECK(vc_connect(admin, "127.0.0.1", port) == VC_OK);
CHECK(vc_authenticate_user(admin, "admin", "pass") == VC_OK);
CHECK(wait_for(evAdmin, [](EventStore& s) { return s.auth_ok; }, 8000));
CHECK(wait_for(evAdmin, [](EventStore& s) { return s.channel_list_received; }, 3000));
uint32_t ch_full = make_channel(admin, evAdmin, "FullBand", 48000);
uint32_t ch_narrow = make_channel(admin, evAdmin, "NarrowBand", 8000);
CHECK(ch_full != 0);
CHECK(ch_narrow != 0);
int64_t full_energy = (ch_full ? run_case(port, admin, evAdmin, ch_full, 48000, "full") : -1);
int64_t narrow_energy = (ch_narrow ? run_case(port, admin, evAdmin, ch_narrow, 8000, "narrow") : -1);
// The 7 kHz tone is above the narrowband (~4 kHz) cutoff: the narrowband channel must filter
// most of it out, so its decoded energy is far below the full-band channel's. Generous margin
// (< 50%) to stay robust across Opus versions while still proving the cap is in effect.
CHECK(full_energy > 0);
CHECK(narrow_energy >= 0);
std::printf("channel_samplerate: full=%lld narrow=%lld ratio=%.3f\n",
static_cast<long long>(full_energy), static_cast<long long>(narrow_energy),
full_energy > 0 ? static_cast<double>(narrow_energy) / static_cast<double>(full_energy)
: 0.0);
CHECK(narrow_energy < full_energy / 2);
vc_disconnect(admin);
vc_client_destroy(admin);
server.stop();
server_thread.join();
std::filesystem::remove_all(tmp);
if (g_failures == 0) {
std::printf("channel_samplerate: all checks passed\n");
return 0;
}
std::printf("channel_samplerate: %d failure(s)\n", g_failures);
return 1;
}
#else // !VOICECAT_HAS_NET
int main() {
std::printf("channel_samplerate: SKIP (VOICECAT_HAS_NET not defined)\n");
return 0;
}
#endif // VOICECAT_HAS_NET