Files
lgtv_audio_cap/README.md
T
Rene KievitsandClaude Opus 5 0759cc00aa Let the Device field be picked, not typed blind
Diagnosing capture on a real TV meant reading pactlSources off the
screen and typing an exact PulseAudio source name back in through the
same remote-driven text field — no way to copy-paste, easy to
mistype, and the one piece of information (which source, if any, is
actually RUNNING) was buried in a JSON dump.

Added two choice() pickers bound to the same capture.device setting:
one built from pactlSources (pulse/auto backends), one built from
alsaCapturePcms (alsa backend), both parsed from diagnostics the
service already collects — no new Luna method needed. Diagnostics
already run once at boot, so the picker is populated immediately,
before the user ever presses "Run diagnostics" by hand.

Picking a value writes straight into capture.device, and the plain
text field stays as the fallback for anything the parser misses.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-08-26 13:51:02 +02:00

137 lines
6.5 KiB
Markdown

# LG TV Audio Cap
Captures the audio playing on an LG webOS 5 or 6 TV and streams it off the set.
The reason it exists is HyperHDR: ambient lighting that reacts to what the TV is
actually playing, without a microphone in the room or an audio splitter behind
the telly.
It installs through the [Homebrew Channel](https://github.com/webosbrew/webos-homebrew-channel)
and runs as a native background service with a remote-friendly UI in front of
it.
```
┌────────────────────── LG webOS TV ──────────────────────┐
│ PulseAudio / ALSA / a command │
│ │ │
│ capture ─► level + 16-band analysis │
│ │ │
│ ├─► RTP/L16 ──────────────► HyperHDR host │ ← the main path
│ ├─► Flatbuffers images ───► HyperHDR │
│ ├─► raw PCM over UDP │
│ ├─► raw PCM over TCP │
│ └─► WAV over HTTP │
└─────────────────────────────────────────────────────────┘
```
## Why it works this way
HyperHDR has **no network audio input**. Its sound-reactive effects read a
*local* capture device. So the main path here does not try to talk to HyperHDR
at all: it sends the TV's audio to the HyperHDR machine as RTP/L16, and a small
receiver there turns it into a normal sound device that HyperHDR can select.
That is [`host/lgtv-audiocap-receiver.py`](host/lgtv-audiocap-receiver.py), and
[`host/install-loopback.sh`](host/install-loopback.sh) sets up the loopback for
it.
If you would rather not run anything on the HyperHDR machine, there is a second
path: the TV does the frequency analysis itself and sends finished images to
HyperHDR's Flatbuffers port. Fewer moving parts, but the lights react to the
TV's idea of the spectrum rather than to real audio.
See [docs/hyperhdr.md](docs/hyperhdr.md) for both, step by step.
## Requirements
- An LG TV on webOS 5 or 6, rooted, with the Homebrew Channel installed.
- Root for the service. The TV's audio devices are not readable otherwise; the
app has a **Grant root access** button that calls the Homebrew Channel's
`elevate-service` for you.
- For the main HyperHDR path: a Linux machine running HyperHDR with either
`snd-aloop` or PulseAudio/PipeWire available.
## Installing
This app is not in the official Homebrew Channel repository (that needs a
review submission — see [docs/development.md](docs/development.md)). Two ways
to get it onto the TV instead, neither needing SSH or Developer Mode:
**Add it as a custom repository (recommended).** The Homebrew Channel can
browse-and-install from any repository URL you give it, not just the official
one. Build the ipk, publish it plus a generated repo index, then add that URL
on the TV:
```sh
npm install # ares-cli, only needed for step 2
./tools/docker-build.sh # cross-compile; Linux: ./tools/build.sh native
./tools/build.sh package # -> out/*.ipk
python3 tools/make-manifest.py --base-url <where you'll host the release assets>
# -> out/repo.json, out/manifest.json
```
Attach the ipk, `frontend/assets/icon.png` and `out/repo.json` to a release at
that URL, then on the TV: **Homebrew Channel → ⚙ → Add repository** → paste the
`repo.json` URL → back to Browse → *Audio Cap* → Install. Full walkthrough,
including why the URLs have to match exactly, in
[docs/development.md](docs/development.md#publishing-to-the-homebrew-channel).
**Install the ipk directly**, if you do have ares-cli talking to the TV (e.g.
LG Developer Mode's ssh on port 9922, or a root SSH server you've enabled):
```sh
ares-install --device tv out/org.webosbrew.audiocap_1.0.0_all.ipk
```
## First run
1. Launch **Audio Cap** on the TV.
2. **System → Root access**: press *Grant root access* if it says the service is
not root. It restarts itself.
3. **Capture → Backend**: leave it on *Automatic* to begin with. If nothing is
captured, run [`tools/tv-probe.sh`](tools/tv-probe.sh) on the TV to see what
your firmware actually offers, then pick a backend by hand.
4. **Outputs → HyperHDR audio (RTP/L16)**: turn it on and enter the address of
the machine running HyperHDR.
5. On that machine: `sudo ./host/install-loopback.sh --install-service`, then
point HyperHDR's sound capture at the device it prints.
6. Press **Start** on the TV. The level meter should move.
Nothing captured, no idea why? [docs/troubleshooting.md](docs/troubleshooting.md).
## The other outputs
Each can run at the same time as the others.
| Output | What it is | Use it for |
| --- | --- | --- |
| **HyperHDR audio** | RTP/L16, port 5004 | the main path; also readable by PulseAudio's `module-rtp-recv` with no custom software |
| **HyperHDR visualiser** | Flatbuffers images, port 19400 | HyperHDR with nothing installed on the host |
| **Raw PCM over UDP** | S16LE datagrams, port 4010 | your own scripts; lowest latency |
| **Raw PCM over TCP** | S16LE stream, port 4011 | anything that would rather connect than listen |
| **HTTP WAV** | `http://tv:4012/audio.wav` | opening the TV's audio in VLC |
## Layout
```
native/ the webOS service: capture, DSP, sinks, Luna API (C)
frontend/ the on-TV app (plain HTML/CSS/JS, no framework)
servicefiles/ services.json, package.json and the boot script
host/ the receiver and loopback setup for the HyperHDR machine
docker/ the receiver, packaged as a container (e.g. for Unraid)
unraid/ the plugin for the one part a container can't do: the
ALSA loopback kernel module, persisted across reboots
tools/ build, packaging, asset generation, on-TV probe
test/ host-side tests: wire formats, the capture pipeline, the UI
docs/ the longer explanations
```
## Documentation
- [docs/hyperhdr.md](docs/hyperhdr.md) — connecting it to HyperHDR, both ways
- [docs/configuration.md](docs/configuration.md) — every setting, and the Luna API
- [docs/development.md](docs/development.md) — building, testing, packaging, publishing
- [docs/troubleshooting.md](docs/troubleshooting.md) — when it does not work
## License
MIT.