bt-trace was reading kernel-prepended 0xFD as the low byte of bt_31 counter (and shifting all subsequent fields by 1), producing nonsensical rates like 200000/s and frame lengths of 20224 bytes. Slicing buf[1:] before decoding gives the firmware-supplied payload bytes aligned to the documented 0xFD layout. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
216 lines
6.9 KiB
Bash
Executable File
216 lines
6.9 KiB
Bash
Executable File
#!/usr/bin/env bash
|
|
# Mic-path host-side diagnostic for the DS5Dongle (OLED Edition).
|
|
#
|
|
# Subcommands:
|
|
# status — one-shot snapshot of dongle USB / ALSA / capture stream state.
|
|
# Prints whether the dongle enumerated, what ALSA card # it
|
|
# took, the capture stream's current alt setting + sync mode,
|
|
# and whether a paired DualSense is reachable.
|
|
# capture — runs a 3-second arecord on the mic IN endpoint, reports
|
|
# ALSA result code, captured byte count, and a non-silence
|
|
# indicator (peak abs sample value via Python's wave module).
|
|
# Tells us in one shot whether the firmware is producing
|
|
# actual isoc-IN data and whether anything audio-like is
|
|
# showing up.
|
|
# watch — loops `status` every 2 seconds, prints only on changes —
|
|
# useful for catching the moment pairing completes or the
|
|
# arecord stream opens/closes.
|
|
#
|
|
# Why a script: lets the assistant query mic-path state directly from
|
|
# the host rather than waiting for the user to relay OLED counters
|
|
# through chat, which dominated the early Phase-3 debugging time.
|
|
#
|
|
# Requirements (all already installed on the user's machine):
|
|
# - arecord (alsa-utils)
|
|
# - lsusb (usbutils)
|
|
# - python3 (for wave-file stats)
|
|
|
|
set -u
|
|
|
|
VID=054c
|
|
PID=0ce6
|
|
DEV_NAME_RE='DualSense Wireless Controller'
|
|
|
|
find_card() {
|
|
arecord -l 2>/dev/null | awk -v re="$DEV_NAME_RE" '
|
|
$0 ~ re {
|
|
for (i = 1; i <= NF; i++) {
|
|
if ($i == "card") { gsub(":", "", $(i+1)); print $(i+1); exit }
|
|
}
|
|
}'
|
|
}
|
|
|
|
show_status() {
|
|
local card
|
|
card="$(find_card)"
|
|
|
|
# USB layer — is the device visible?
|
|
if lsusb -d "${VID}:${PID}" >/dev/null 2>&1; then
|
|
printf 'usb: present (%s:%s)\n' "$VID" "$PID"
|
|
else
|
|
printf 'usb: NOT FOUND — is the dongle plugged in?\n'
|
|
return 1
|
|
fi
|
|
|
|
if [[ -z "$card" ]]; then
|
|
printf 'alsa: dongle is on USB but not exposed as an audio card\n'
|
|
return 1
|
|
fi
|
|
printf 'alsa: card %s\n' "$card"
|
|
|
|
# Capture stream details (interface 2 alt 1 mic-IN endpoint)
|
|
if [[ -r "/proc/asound/card${card}/stream0" ]]; then
|
|
# Grep just the Capture block so we see status + altset + endpoint
|
|
awk '/^Capture:/,0' "/proc/asound/card${card}/stream0" | head -10 | sed 's/^/ /'
|
|
else
|
|
printf ' (no /proc/asound/card%s/stream0 — older kernel?)\n' "$card"
|
|
fi
|
|
}
|
|
|
|
run_capture() {
|
|
local card secs="${1:-3}"
|
|
card="$(find_card)"
|
|
if [[ -z "$card" ]]; then
|
|
printf 'no dongle capture device found\n'
|
|
return 1
|
|
fi
|
|
|
|
local tmp
|
|
tmp="$(mktemp -t mic_diag.XXXXXX.wav)"
|
|
printf 'capturing %ss from card %s into %s ...\n' "$secs" "$card" "$tmp"
|
|
|
|
local err
|
|
err="$(arecord -q -D "plughw:${card},0" -f S16_LE -c 2 -r 48000 -d "$secs" "$tmp" 2>&1)"
|
|
local rc=$?
|
|
if (( rc != 0 )); then
|
|
printf 'arecord exit=%d: %s\n' "$rc" "$err"
|
|
rm -f "$tmp"
|
|
return "$rc"
|
|
fi
|
|
|
|
# Stats via Python — peak abs sample is enough to distinguish "stream
|
|
# produced silence" from "stream produced actual audio".
|
|
python3 - "$tmp" <<'PY'
|
|
import sys, wave, struct
|
|
path = sys.argv[1]
|
|
with wave.open(path, 'rb') as w:
|
|
nframes = w.getnframes()
|
|
sw = w.getsampwidth()
|
|
ch = w.getnchannels()
|
|
fr = w.getframerate()
|
|
raw = w.readframes(nframes)
|
|
nsamples = nframes * ch
|
|
fmt = '<' + ('h' * nsamples)
|
|
data = struct.unpack(fmt, raw)
|
|
peak = max(abs(s) for s in data) if data else 0
|
|
nonzero = sum(1 for s in data if s != 0)
|
|
rms = (sum(s*s for s in data) / max(len(data), 1)) ** 0.5
|
|
print(f'wav: {nframes} frames, {ch} ch, {sw*8}-bit, {fr} Hz')
|
|
print(f'samples: nonzero={nonzero}/{nsamples} peak={peak} rms={rms:.1f}')
|
|
if peak == 0:
|
|
print('verdict: STREAM IS SILENT — firmware not producing isoc-IN data')
|
|
elif peak < 100:
|
|
print('verdict: extremely quiet — possibly DC offset only')
|
|
else:
|
|
print('verdict: AUDIO PRESENT')
|
|
PY
|
|
rm -f "$tmp"
|
|
}
|
|
|
|
watch_status() {
|
|
local prev=""
|
|
while :; do
|
|
local now
|
|
now="$(show_status 2>&1)"
|
|
if [[ "$now" != "$prev" ]]; then
|
|
printf '\n=== %s ===\n%s\n' "$(date '+%H:%M:%S')" "$now"
|
|
prev="$now"
|
|
fi
|
|
sleep 2
|
|
done
|
|
}
|
|
|
|
bt_trace() {
|
|
# Query the firmware's 0xFD vendor feature report via /dev/hidraw —
|
|
# exposes BT-side packet counts, last seen non-0x31 report ID, byte
|
|
# prefixes. Lets us find where the mic stream actually lives without
|
|
# an OLED-relay flash cycle per change.
|
|
python3 - <<'PY'
|
|
import fcntl, glob, struct, sys, time
|
|
|
|
VID, PID = 0x054c, 0x0ce6
|
|
|
|
def find_dongle():
|
|
for path in sorted(glob.glob('/dev/hidraw*')):
|
|
try:
|
|
f = open(path, 'rb+')
|
|
info = bytearray(8)
|
|
HIDIOCGRAWINFO = 0x80084803
|
|
try:
|
|
fcntl.ioctl(f, HIDIOCGRAWINFO, info)
|
|
except OSError:
|
|
pass
|
|
# Try feature 0xFD; if it returns 64 bytes we know it's our dongle
|
|
buf = bytearray(32); buf[0] = 0xFD
|
|
ioctl_num = (3 << 30) | (32 << 16) | (ord('H') << 8) | 0x07
|
|
try:
|
|
fcntl.ioctl(f, ioctl_num, buf)
|
|
return f
|
|
except OSError:
|
|
f.close()
|
|
except (OSError, PermissionError):
|
|
pass
|
|
return None
|
|
|
|
f = find_dongle()
|
|
if f is None:
|
|
print('no dongle found (or no /dev/hidraw permission)')
|
|
sys.exit(1)
|
|
|
|
ioctl_num = (3 << 30) | (64 << 16) | (ord('H') << 8) | 0x07
|
|
|
|
def query():
|
|
buf = bytearray(32); buf[0] = 0xFD
|
|
ioctl_num_32 = (3 << 30) | (32 << 16) | (ord('H') << 8) | 0x07
|
|
fcntl.ioctl(f, ioctl_num_32, buf)
|
|
# Kernel prepends the report ID at byte 0; firmware payload starts at byte 1.
|
|
return bytes(buf[1:])
|
|
|
|
def decode(b):
|
|
bt31 = struct.unpack('<I', b[0:4])[0]
|
|
btoth = struct.unpack('<I', b[4:8])[0]
|
|
other_id = b[8]
|
|
other_or = b[9]
|
|
b2_or = b[10]
|
|
b2_last = b[11]
|
|
lmin = struct.unpack('<H', b[12:14])[0]
|
|
lmax = struct.unpack('<H', b[14:16])[0]
|
|
othpfx = b[16:24].hex()
|
|
anypfx = b[24:32].hex()
|
|
return (bt31, btoth, other_id, other_or, b2_or, b2_last,
|
|
lmin, lmax, othpfx, anypfx)
|
|
|
|
s1 = query(); time.sleep(1.0); s2 = query()
|
|
d1 = decode(s1); d2 = decode(s2)
|
|
bt31_rate = d2[0] - d1[0]
|
|
btoth_rate = d2[1] - d1[1]
|
|
print(f'rates: 0x31={bt31_rate}/s, non-0x31={btoth_rate}/s')
|
|
print(f'len range: {d2[6]}-{d2[7]} bytes')
|
|
print(f'byte[2] OR mask across 0x31 frames: 0x{d2[4]:02X} last=0x{d2[5]:02X}')
|
|
print(f'non-0x31 report IDs: OR mask=0x{d2[3]:02X} most recent=0x{d2[2]:02X}')
|
|
print(f'last non-0x31 prefix (data[0..7]): {d2[8]}')
|
|
print(f'last ANY frame (data[0..7]): {d2[9]}')
|
|
PY
|
|
}
|
|
|
|
case "${1:-status}" in
|
|
status) show_status ;;
|
|
capture) shift; run_capture "${1:-3}" ;;
|
|
watch) watch_status ;;
|
|
bt-trace) bt_trace ;;
|
|
*)
|
|
printf 'usage: %s {status|capture [secs]|watch|bt-trace}\n' "$0" >&2
|
|
exit 2
|
|
;;
|
|
esac
|