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node-26/drb-edge-node/tests/test_call_recorder.py
Logan CusanoandClaude Opus 5 0c08275482
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Stop throwing away the audio Whisper has to read
The single encode at save time was %mp3(bitrate=16), and the comment said why:
it matched what Liquidsoap pushes to Icecast. That was the wrong thing to
match. Icecast is the LISTENING path and 16 kbps is a bandwidth budget for a
live stream; this file is the ACCURACY path -- it is what Whisper transcribes,
and CLAUDE.md is explicit that everything downstream is hostage to it. P25 has
already been through a vocoder, so 16 kbps MP3 stacked a second lossy stage on
the one copy that had to stay faithful.

FLAC instead. Lossless, so the bytes Whisper receives are the bytes PulseAudio
captured. ~1.3 MB/min against 120 KB/min, which keeps a 600 s call (the time
cap) around 13 MB -- inside Whisper's 25 MB request cap and well inside
upload_max_bytes. Icecast's own 16 kbps stream is untouched; nothing about
live listening changes.

Capture, buffering, silence detection and the byte-offset trim are all
unchanged: they operate on raw PCM and never saw the encode. The sample rate
stays pinned to pcm.SAMPLE_RATE so the encode remains a straight pass -- the
trim arithmetic depends on that, and Whisper resamples to 16 kHz itself.

encode_mp3 is now encode_recording, the upload sends audio/flac, and the test
that pinned the old contract now pins losslessness instead, including an
assertion that no bitrate constant comes back.

This is the before/after boundary for STT quality. Last night's window is the
16 kbps baseline.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-08-23 12:48:32 -04:00

645 lines
26 KiB
Python

"""
Unit tests for the CallRecorder: PCM ring buffer, per-call accumulator, the
continuous voice-activity signal the segmenter reads, and the single encode.
No FFmpeg and no PulseAudio: chunks are pushed through _ingest() with a patched
clock, which is exactly what the capture loop does at runtime, and the MP3
encoder is replaced with a stub that writes the raw PCM it was handed. That stub
is also how "exactly one encode per call" is asserted — the old design captured
MP3 and then re-encoded it to trim, so every upload was double-encoded.
"""
import asyncio
import itertools
import time
from array import array
from typing import List
from unittest.mock import patch
import pytest
from app.config import settings
from app.internal import call_recorder as recorder_mod
from app.internal import pcm
from app.internal.call_recorder import (
CallRecorder,
MAX_RECORDING_BYTES,
MAX_RECORDING_SECONDS,
PRE_ROLL_SECONDS,
RING_BUFFER_SECONDS,
)
T0 = 1_700_000_000.0
# One synthetic chunk carries exactly CHUNK_INTERVAL seconds of audio AND
# arrives CHUNK_INTERVAL apart, so arrival-timestamp arithmetic (slicing) and
# byte-offset arithmetic (trimming) agree with each other.
CHUNK_INTERVAL = 0.1
CHUNK_SAMPLES = int(pcm.SAMPLE_RATE * CHUNK_INTERVAL)
CHUNK_BYTES = CHUNK_SAMPLES * pcm.FRAME_BYTES
SPEECH_LEVEL = 4096 # -18 dBFS, the measured field average
FLOOR_LEVEL = 1 # -90.3 dBFS, the measured digital-silence floor
def block(level: int, samples: int = CHUNK_SAMPLES) -> bytes:
return array("h", [level, -level] * (samples // 2)).tobytes()
VOICE = block(SPEECH_LEVEL)
QUIET = block(FLOOR_LEVEL)
@pytest.fixture
def encodes(monkeypatch):
"""Replace the one encode with a stub that writes the PCM it was given."""
calls: List[tuple] = []
async def _encode(audio: bytes, path):
calls.append((audio, path))
path.write_bytes(audio)
return True
monkeypatch.setattr(recorder_mod, "encode_recording", _encode)
return calls
@pytest.fixture
def recorder(tmp_path, monkeypatch, encodes):
monkeypatch.setattr(settings, "trim_silence", False)
r = CallRecorder()
r._recordings_dir = tmp_path
r._capturing = True
return r
def ingest(recorder, start: float, end: float, chunk: bytes = VOICE) -> None:
"""Feed one chunk every CHUNK_INTERVAL seconds over [start, end)."""
stamps: List[float] = []
ts = start
while ts < end:
stamps.append(ts)
ts = round(ts + CHUNK_INTERVAL, 6)
if not stamps:
return
with patch("app.internal.call_recorder.time.time", side_effect=stamps):
for _ in stamps:
recorder._ingest(chunk)
def duration_of(path) -> float:
return pcm.seconds(len(path.read_bytes()))
def timestamps(recorder):
return [ts for ts, _ in recorder._buffer]
# ---------------------------------------------------------------------------
# Ring buffer trimming (pre-roll duty only)
# ---------------------------------------------------------------------------
def test_idle_buffer_keeps_only_the_rolling_window(recorder):
ingest(recorder, T0, T0 + RING_BUFFER_SECONDS + 20)
assert recorder.buffered_seconds <= RING_BUFFER_SECONDS + CHUNK_INTERVAL
newest = max(timestamps(recorder))
assert min(timestamps(recorder)) >= newest - RING_BUFFER_SECONDS
@pytest.mark.asyncio
async def test_ring_buffer_is_trimmed_even_while_recording(recorder):
"""
The ring buffer serves PRE-ROLL only. An open recording must not pin it —
that was the mechanism that made call length depend on buffer size.
"""
ingest(recorder, T0, T0 + 2.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
ingest(recorder, T0 + 2.0, T0 + 2.0 + RING_BUFFER_SECONDS + 10)
assert recorder.buffered_seconds <= RING_BUFFER_SECONDS + CHUNK_INTERVAL
# ...and the audio the ring buffer dropped is safe in the accumulator.
assert recorder._active is not None
assert recorder._active.chunks[0][0] == pytest.approx(T0 + 1.0 - PRE_ROLL_SECONDS, abs=CHUNK_INTERVAL)
# ---------------------------------------------------------------------------
# Call length must not be bounded by the ring buffer
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_call_longer_than_the_ring_buffer_is_captured_whole(recorder):
call_length = RING_BUFFER_SECONDS * 2 + 5 # 65s against a 30s ring buffer
grant = T0 + 1.0
end = grant + call_length
ingest(recorder, T0, grant)
await recorder.start_recording("call-long", start_epoch=grant)
ingest(recorder, grant, end + 1.0)
rec = await recorder.stop_recording(end_epoch=end)
assert rec is not None and rec.path is not None
captured = duration_of(rec.path)
assert captured > RING_BUFFER_SECONDS, "call length must not be clamped by the ring buffer"
assert captured == pytest.approx(call_length + PRE_ROLL_SECONDS, abs=2 * CHUNK_INTERVAL)
@pytest.mark.asyncio
async def test_accumulator_stops_growing_at_the_memory_ceiling(recorder, caplog):
"""A runaway call must not be able to exhaust RAM on a Pi."""
await recorder.start_recording("call-runaway", start_epoch=T0)
# Silent blocks on purpose: this test is about bytes, not content, and the
# all-zero fast path keeps it from spending seconds in the RMS loop.
big = b"\x00" * 64_000
needed = (MAX_RECORDING_BYTES // len(big)) + 5
# An unbounded clock: patching time.time patches it for everything running
# inside the block, not only for our calls.
ticks = itertools.count()
with caplog.at_level("WARNING", logger="drb-edge-node"):
with patch("app.internal.call_recorder.time.time",
side_effect=lambda: T0 + next(ticks) * 0.1):
for _ in range(needed):
recorder._ingest(big)
assert recorder._active is not None
assert recorder._active.total_bytes <= MAX_RECORDING_BYTES
assert recorder._active.truncated_by_cap
assert any("memory ceiling" in r.message for r in caplog.records)
def test_the_byte_ceiling_can_never_truncate_a_legal_call():
"""
PCM costs 44.1 KB/s where MP3 cost 2 KB/s, so this had to be re-derived.
The TIME cap must always bite before the BYTE cap, or a long pursuit would
be silently cut short by a memory limit.
"""
assert MAX_RECORDING_BYTES > MAX_RECORDING_SECONDS * pcm.BYTES_PER_SECOND
# ...and it still has to be a deliberate, bounded number on a Pi.
assert MAX_RECORDING_BYTES <= 48 * 1024 * 1024
def test_the_ring_buffer_memory_cost_is_bounded():
assert RING_BUFFER_SECONDS * pcm.BYTES_PER_SECOND < 2 * 1024 * 1024
# ---------------------------------------------------------------------------
# Voice activity — the signal the segmenter starts and stops on
# ---------------------------------------------------------------------------
def test_digital_silence_produces_no_voice_marks(recorder):
ingest(recorder, T0, T0 + 5.0, chunk=QUIET)
activity = recorder.audio_activity()
assert activity.last_voice_epoch is None
assert activity.voice_onset_epoch is None
def test_voice_onset_is_the_arrival_of_the_first_non_silent_chunk(recorder):
ingest(recorder, T0, T0 + 2.0, chunk=QUIET)
ingest(recorder, T0 + 2.0, T0 + 3.0, chunk=VOICE)
activity = recorder.audio_activity()
assert activity.voice_onset_epoch == pytest.approx(T0 + 2.0)
assert activity.last_voice_epoch == pytest.approx(T0 + 3.0 - CHUNK_INTERVAL)
def test_a_gap_shorter_than_the_silence_timeout_does_not_start_a_new_run(recorder, monkeypatch):
"""Back-and-forth inside the window is ONE run, hence one recording."""
monkeypatch.setattr(settings, "call_silence_timeout", 3.0)
ingest(recorder, T0, T0 + 1.0, chunk=VOICE)
ingest(recorder, T0 + 1.0, T0 + 2.5, chunk=QUIET)
ingest(recorder, T0 + 2.5, T0 + 3.5, chunk=VOICE)
assert recorder.audio_activity().voice_onset_epoch == pytest.approx(T0)
def test_a_gap_longer_than_the_silence_timeout_starts_a_new_run(recorder, monkeypatch):
monkeypatch.setattr(settings, "call_silence_timeout", 3.0)
ingest(recorder, T0, T0 + 1.0, chunk=VOICE)
ingest(recorder, T0 + 1.0, T0 + 6.0, chunk=QUIET)
ingest(recorder, T0 + 6.0, T0 + 7.0, chunk=VOICE)
assert recorder.audio_activity().voice_onset_epoch == pytest.approx(T0 + 6.0)
def test_activity_snapshot_reports_capture_and_recording_state(recorder):
activity = recorder.audio_activity()
assert activity.capturing is True
assert activity.recording is False
recorder._capturing = False
assert recorder.audio_activity().capturing is False
# ---------------------------------------------------------------------------
# Pre-roll and slicing
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_slice_starts_pre_roll_before_the_detected_onset(recorder):
ingest(recorder, T0, T0 + 10.0)
onset = T0 + 5.0
await recorder.start_recording("call-1", start_epoch=onset)
assert recorder._active.slice_start == pytest.approx(onset - PRE_ROLL_SECONDS)
rec = await recorder.stop_recording(end_epoch=onset + 2.0)
assert rec is not None and rec.path is not None and rec.path.exists()
first_ts = recorder._active.chunks[0][0] if recorder._active else None
assert first_ts is None # recording closed
# The audio actually covered must begin at or before the requested slice
# start — erring early is safe, erring late loses speech.
assert rec.audio_start_epoch <= onset - PRE_ROLL_SECONDS + 1e-6
@pytest.mark.asyncio
async def test_tail_chunk_straddling_the_end_is_included(recorder):
ingest(recorder, T0, T0 + 10.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
rec = await recorder.stop_recording(end_epoch=T0 + 3.05)
# The chunk covering the end instant must be kept, so the captured audio
# reaches past the requested end rather than stopping short of it.
assert rec.audio_end_epoch >= T0 + 3.05
@pytest.mark.asyncio
async def test_max_recording_seconds_caps_the_slice(recorder):
ingest(recorder, T0, T0 + 1.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
ingest(recorder, T0 + 1.0, T0 + MAX_RECORDING_SECONDS + 60)
rec = await recorder.stop_recording(end_epoch=T0 + MAX_RECORDING_SECONDS + 50)
assert duration_of(rec.path) <= MAX_RECORDING_SECONDS + PRE_ROLL_SECONDS + CHUNK_INTERVAL
# ---------------------------------------------------------------------------
# Tail wait — still needed for control-channel-derived ends (tgid splits)
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_stop_waits_for_captured_audio_to_reach_the_call_end(recorder, caplog):
"""
A tgid_change close pads past a control-channel timestamp that is ~now, so
the audio it asks for has not been captured yet. Slicing immediately would
cut the last word off.
"""
ingest(recorder, T0, T0 + 4.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
async def late_tail():
await asyncio.sleep(0.15)
with patch("app.internal.call_recorder.time.time", return_value=T0 + 4.6):
recorder._ingest(block(SPEECH_LEVEL))
task = asyncio.create_task(late_tail())
with caplog.at_level("INFO", logger="drb-edge-node"):
rec = await recorder.stop_recording(end_epoch=T0 + 4.5)
await task
assert rec is not None and rec.path is not None
# The slice covers the chunks stamped T0+0.8 .. T0+3.9 (32 of them) plus the
# one that arrived late — and that last one is where the final word of the
# transmission lives. Without the wait it would have been cut.
chunk_seconds = pcm.seconds(len(VOICE))
assert duration_of(rec.path) == pytest.approx(33 * chunk_seconds, abs=0.01)
assert duration_of(rec.path) > 32 * chunk_seconds
assert any("Waited" in r.message and "tail" in r.message for r in caplog.records), \
"a tail wait must be observable in the field logs"
@pytest.mark.asyncio
async def test_tail_wait_is_bounded_and_warns_when_audio_never_arrives(recorder, caplog, monkeypatch):
monkeypatch.setattr(recorder_mod, "TAIL_WAIT_TIMEOUT_SECONDS", 0.2)
ingest(recorder, T0, T0 + 4.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
started = time.monotonic()
with caplog.at_level("WARNING", logger="drb-edge-node"):
rec = await recorder.stop_recording(end_epoch=T0 + 10.0)
elapsed = time.monotonic() - started
assert elapsed < 2.0, "the wait must be bounded, never open-ended"
assert rec is not None and rec.path is not None, "a short tail still beats no recording"
messages = [r.message for r in caplog.records]
assert any("Tail wait" in m and "gave up" in m for m in messages)
assert any("BUFFER CLAMP" in m for m in messages), "silent truncation must be loud"
@pytest.mark.asyncio
async def test_no_wait_when_the_buffer_already_covers_the_end(recorder, caplog):
"""
An audio-driven close derives its end epoch from audio that is already
buffered, so the common path must never pay the tail wait at all.
"""
ingest(recorder, T0, T0 + 10.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
started = time.monotonic()
with caplog.at_level("INFO", logger="drb-edge-node"):
await recorder.stop_recording(end_epoch=T0 + 3.0)
assert (time.monotonic() - started) < 0.1
assert not any("Waited" in r.message for r in caplog.records)
# ---------------------------------------------------------------------------
# Clamping must be loud
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_pre_roll_earlier_than_buffer_start_is_clamped_and_warned(recorder, caplog):
"""An onset older than anything buffered must still produce a file, loudly."""
ingest(recorder, T0 + 5.0, T0 + 10.0) # buffer only covers T0+5 onwards
with caplog.at_level("WARNING", logger="drb-edge-node"):
await recorder.start_recording("call-1", start_epoch=T0) # 5 s before the head
rec = await recorder.stop_recording(end_epoch=T0 + 8.0)
assert rec is not None and rec.path is not None and rec.path.stat().st_size > 0
assert rec.clamped_seconds == pytest.approx(5.0 + PRE_ROLL_SECONDS, abs=CHUNK_INTERVAL)
assert any("BUFFER CLAMP" in r.message for r in caplog.records)
@pytest.mark.asyncio
async def test_no_buffered_audio_returns_none(recorder, encodes):
await recorder.start_recording("call-1", start_epoch=T0)
assert await recorder.stop_recording(end_epoch=T0 + 2.0) is None
assert encodes == [], "nothing to encode means no encoder subprocess"
@pytest.mark.asyncio
async def test_start_epoch_omitted_falls_back_to_now(recorder):
now = time.time()
ingest(recorder, now - 5.0, now)
await recorder.start_recording("call-1")
assert recorder._active.slice_start == pytest.approx(now - PRE_ROLL_SECONDS, abs=1.0)
# ---------------------------------------------------------------------------
# Encode — exactly once, at save time
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_audio_is_encoded_exactly_once_per_call(recorder, encodes, monkeypatch):
"""
The old pipeline captured MP3 and then re-encoded it to trim, so every
upload was double-encoded. Capture is PCM now and MP3 happens once, after
trimming, at save time.
"""
monkeypatch.setattr(settings, "trim_silence", True)
ingest(recorder, T0, T0 + 1.0, chunk=QUIET)
ingest(recorder, T0 + 1.0, T0 + 3.0, chunk=VOICE)
ingest(recorder, T0 + 3.0, T0 + 6.0, chunk=QUIET)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
rec = await recorder.stop_recording(end_epoch=T0 + 6.0)
assert rec is not None and rec.path is not None
assert len(encodes) == 1, "exactly one encode per recording"
encoded_audio, encoded_path = encodes[0]
assert encoded_path == rec.path
# What was encoded is the TRIMMED audio, not the raw slice.
assert pcm.seconds(len(encoded_audio)) < 5.0
@pytest.mark.asyncio
async def test_a_failed_encode_leaves_no_file_and_no_recording(recorder, monkeypatch):
async def _fail(audio, path):
return False
monkeypatch.setattr(recorder_mod, "encode_recording", _fail)
ingest(recorder, T0, T0 + 5.0)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
assert await recorder.stop_recording(end_epoch=T0 + 3.0) is None
assert list(recorder._recordings_dir.glob("*.flac")) == []
def test_encoder_command_contract_matches_what_c2_expects():
"""
The saved file is what Whisper transcribes, so the encode must stay
LOSSLESS and must not resample. It was 16 kbps MP3 — a bitrate copied from
Icecast's live stream, i.e. the listening path's budget applied to the
accuracy path — which put a second lossy stage on top of the P25 vocoder.
The sample rate must equal pcm.SAMPLE_RATE or the encode stops being a
straight pass and the byte-offset trim arithmetic no longer lines up.
"""
assert recorder_mod.AUDIO_SAMPLE_RATE == str(pcm.SAMPLE_RATE) == "22050"
assert recorder_mod.AUDIO_FORMAT == "flac"
assert recorder_mod.AUDIO_SUFFIX == ".flac"
assert recorder_mod.AUDIO_MIME == "audio/flac"
# No bitrate constant should exist: a bitrate on a lossless codec would mean
# someone reintroduced lossy encoding.
assert not hasattr(recorder_mod, "MP3_BITRATE")
# ---------------------------------------------------------------------------
# Silence trimming and timing metadata
# ---------------------------------------------------------------------------
async def _recorded(recorder, lead_silence=1.0, voice=2.0, tail_silence=1.0):
start = T0
ingest(recorder, start, start + lead_silence, chunk=QUIET)
ingest(recorder, start + lead_silence, start + lead_silence + voice, chunk=VOICE)
ingest(recorder, start + lead_silence + voice,
start + lead_silence + voice + tail_silence, chunk=QUIET)
await recorder.start_recording("call-1", start_epoch=start + 0.5)
return await recorder.stop_recording(end_epoch=start + lead_silence + voice + tail_silence)
@pytest.mark.asyncio
async def test_trimming_is_off_when_the_setting_is_off(recorder, monkeypatch):
monkeypatch.setattr(settings, "trim_silence", False)
called = False
def _never(*args, **kwargs):
nonlocal called
called = True
return b"", None
monkeypatch.setattr(recorder_mod.audio_trim, "trim_pcm", _never)
rec = await _recorded(recorder)
assert rec is not None and not called
@pytest.mark.asyncio
async def test_trim_shifts_the_audio_bounds_but_not_the_call_bounds(recorder, monkeypatch):
"""
Trimming changes audio duration, so the AUDIO's wall-clock bounds move.
The call's own started_at/ended_at (owned by metadata_watcher) must not be
redefined — the recorder only reports where the audio now sits.
"""
monkeypatch.setattr(settings, "trim_silence", True)
rec = await _recorded(recorder, lead_silence=1.0, voice=2.0, tail_silence=1.5)
assert rec is not None and rec.path is not None
assert rec.lead_trimmed > 0.0 and rec.tail_trimmed > 0.0
guard = settings.trim_silence_guard_seconds
# Slice began at T0+0.25; speech begins at T0+1.0, so the audio now starts
# one guard margin before the speech.
assert rec.audio_start_epoch == pytest.approx(T0 + 1.0 - guard, abs=3 * CHUNK_INTERVAL)
assert rec.audio_end_epoch == pytest.approx(T0 + 3.0 + guard, abs=3 * CHUNK_INTERVAL)
assert rec.audio_end_epoch > rec.audio_start_epoch
@pytest.mark.asyncio
async def test_all_silence_recording_is_dropped_and_logged(recorder, monkeypatch, caplog, encodes):
monkeypatch.setattr(settings, "trim_silence", True)
ingest(recorder, T0, T0 + 5.0, chunk=QUIET)
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
with caplog.at_level("WARNING", logger="drb-edge-node"):
rec = await recorder.stop_recording(end_epoch=T0 + 4.0)
assert rec is not None
assert rec.all_silence is True
assert rec.path is None, "an all-silence recording must not be uploaded"
assert encodes == [], "and must not be encoded either"
assert any("no speech" in r.message for r in caplog.records)
# ---------------------------------------------------------------------------
# Recording lifecycle
# ---------------------------------------------------------------------------
@pytest.mark.asyncio
async def test_second_start_is_rejected_while_recording(recorder):
ingest(recorder, T0, T0 + 5.0)
assert await recorder.start_recording("call-1", start_epoch=T0 + 1.0) is True
assert await recorder.start_recording("call-2", start_epoch=T0 + 2.0) is False
assert recorder.is_recording
@pytest.mark.asyncio
async def test_stop_without_start_is_a_noop(recorder):
assert await recorder.stop_recording() is None
assert not recorder.is_recording
@pytest.mark.asyncio
async def test_discard_drops_the_audio_without_writing_anything(recorder, encodes):
"""The orphan-audio path: unattributed audio must never reach a file."""
ingest(recorder, T0, T0 + 5.0)
await recorder.start_recording("call-orphan", start_epoch=T0 + 1.0)
await recorder.discard_recording()
assert not recorder.is_recording
assert encodes == []
assert list(recorder._recordings_dir.glob("*.flac")) == []
# ...and the recorder is immediately reusable.
assert await recorder.start_recording("call-next", start_epoch=T0 + 2.0) is True
@pytest.mark.asyncio
async def test_split_then_immediate_restart_keeps_both_slices(recorder):
"""
A tgid change closes one recording and opens the next at the same instant —
the second must still find its pre-roll in the buffer.
"""
ingest(recorder, T0, T0 + 10.0)
split = T0 + 5.0
await recorder.start_recording("call-1", start_epoch=T0 + 1.0)
first = await recorder.stop_recording(end_epoch=split)
await recorder.start_recording("call-2", start_epoch=split)
second = await recorder.stop_recording(end_epoch=T0 + 8.0)
assert first is not None and first.path.stat().st_size > 0
assert second is not None and second.path.stat().st_size > 0
assert first.path != second.path
# ---------------------------------------------------------------------------
# FFmpeg invocation
# ---------------------------------------------------------------------------
def test_capture_command_asks_for_raw_pcm_not_mp3(recorder):
cmd = recorder._ffmpeg_command()
joined = " ".join(cmd)
assert "-f pulse" in joined
assert "drb_sink.monitor" in joined, "must address the monitor explicitly, not 'default'"
assert cmd[-1] == "-" and cmd[-2] == "s16le", "capture must emit raw PCM on stdout"
assert "mp3" not in joined, "MP3 now happens once at save time, not in the capture"
assert "-ar" in cmd and str(pcm.SAMPLE_RATE) in cmd
assert "-ac" in cmd and str(pcm.CHANNELS) in cmd
def test_read_chunk_is_finer_than_the_pre_roll(recorder):
"""
Chunk size is both the ring buffer's timestamp resolution and the window
silence detection runs over, so it has to stay well under the pre-roll.
"""
chunk_seconds = pcm.seconds(recorder_mod.READ_CHUNK_BYTES)
assert chunk_seconds < PRE_ROLL_SECONDS / 4
assert recorder_mod.READ_CHUNK_BYTES % pcm.FRAME_BYTES == 0
# ---------------------------------------------------------------------------
# Capture-exit classification — the two failure modes must be told apart
# instead of both logging the same generic "restarting" line. This is what
# let a wrong PULSE_SOURCE hide behind normal-looking startup retries before.
# ---------------------------------------------------------------------------
def _log_levels(caplog, logger_name="drb-edge-node"):
return [r.levelname for r in caplog.records if r.name == logger_name]
def test_capture_exit_logs_error_when_source_missing(recorder, caplog):
"""FFmpeg's pulse input prints 'No such process' when the daemon is up
but the configured source name does not exist — a real misconfiguration,
not a startup race, so this must stand out as an error naming the source."""
recorder._last_stderr_lines.append(
"[pulse @ 0x...] pa_stream_connect_record failed: No such process"
)
with caplog.at_level("INFO", logger="drb-edge-node"):
recorder._log_capture_exit()
assert "ERROR" in _log_levels(caplog)
error_messages = [r.message for r in caplog.records if r.levelname == "ERROR"]
assert any(settings.pulse_source in m for m in error_messages)
def test_capture_exit_logs_info_when_no_daemon(recorder, caplog):
"""Connection refused means nothing is listening yet — expected during
startup, so it must NOT be logged at the same severity as a real
misconfiguration."""
recorder._last_stderr_lines.append(
"[pulse @ 0x...] pa_context_connect() failed: Connection refused"
)
with caplog.at_level("INFO", logger="drb-edge-node"):
recorder._log_capture_exit()
levels = _log_levels(caplog)
assert "ERROR" not in levels
assert "INFO" in levels
def test_capture_exit_falls_back_to_generic_warning(recorder, caplog):
"""An FFmpeg failure that matches neither known marker keeps the original
generic behavior rather than guessing."""
recorder._last_stderr_lines.append("[pulse @ 0x...] some other unexpected failure")
with caplog.at_level("INFO", logger="drb-edge-node"):
recorder._log_capture_exit()
assert _log_levels(caplog) == ["WARNING"]
def test_capture_exit_with_no_stderr_captured_is_generic_warning(recorder, caplog):
"""No stderr at all (e.g. FFmpeg killed before printing anything) must not
crash the classifier and must fall back to the generic message."""
assert list(recorder._last_stderr_lines) == []
with caplog.at_level("INFO", logger="drb-edge-node"):
recorder._log_capture_exit()
assert _log_levels(caplog) == ["WARNING"]