open_notebook/CLAUDE.md

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# CLAUDE.md
This file provides guidance to Claude Code (claude.ai/code) when working with code in this repository.
## What this repo is
This is a local Docker Compose deployment of [Open Notebook](https://github.com/lfnovo/open-notebook) (upstream image `lfnovo/open_notebook`), not a clone of its source. There is no application source code here — only deployment config (`docker-compose.yml`, `.env`, `.gitignore`). Application bugs/features belong upstream; this repo only concerns itself with how the stack is run locally.
## Commands
```bash
docker compose up -d # start (pulls images per pull_policy: always)
docker compose down # stop and remove containers (data volumes persist)
docker compose logs -f open_notebook # follow app logs
docker compose ps # container status
```
No build/lint/test suite exists in this repo — nothing here to run.
## Architecture
Two services, defined in `docker-compose.yml`:
- **surrealdb** (`surrealdb/surrealdb:v2`) — the database, RocksDB-backed, bound to `127.0.0.1:8000` only (local debugging access, e.g. `surreal sql`). Credentials come from `SURREAL_USER`/`SURREAL_PASSWORD` (default `root`/`root` if unset in `.env`) and are shared with the `open_notebook` service so they stay in sync.
- **open_notebook** (`lfnovo/open_notebook:v1-latest`) — bundles the web UI (port 8502) and REST API (port 5055) in one image, both bound to `127.0.0.1` only. Connects to `surrealdb` over the internal compose network (`ws://surrealdb:8000/rpc`).
Data persists in `./surreal_data` and `./notebook_data` (bind mounts, gitignored).
### AI providers
This deployment intentionally uses only two AI providers — no OpenAI/Anthropic/Google keys are wired in, even though such keys may exist in the host environment:
- **Ollama**, running natively on the host (not containerized) at `0.0.0.0:11434`, restricted to GPU 1+2 (RTX 3090s) via `CUDA_VISIBLE_DEVICES=1,2` in its systemd unit — GPU 0 (a T600 used for the desktop) is intentionally excluded. The `open_notebook` container reaches it via `OLLAMA_BASE_URL=http://host.docker.internal:11434`, which requires the `extra_hosts: host.docker.internal:host-gateway` entry in the compose file (Linux has no Docker-Desktop magic DNS for this).
- **OpenRouter**, the only cloud provider, configured via `OPENROUTER_API_KEY` (read from the host environment into `.env`).
Neither `surrealdb` nor `open_notebook` do local model inference themselves, so no GPU device reservation is needed in the compose file — all GPU usage happens inside the host's Ollama process.
**Embedding model:** use `nomic-embed-text` (274 MB, 2048 native context), not `qwen3-embedding` (a repurposed 8B-class LLM, ~13GB loaded). With the resident `qwen3.5:27b` chat model already using 17GB of GPU 1's 24GB, `qwen3-embedding` didn't fit and Ollama silently ran it 44-56% on CPU — a single embedding call took 39-54s, so any real document (many chunks, batched) blew past esperanto's 60s embedding timeout (`ESPERANTO_EMBEDDING_TIMEOUT`) and got stuck in an infinite retry loop that looked like "adding the source failed" even though extraction worked fine. Note: the credential's `num_ctx` field (meant to shrink Ollama's context/VRAM footprint) does **not** work for embeddings — esperanto's `OllamaEmbeddingModel` puts it at the top level of the `/api/embed` payload instead of nesting it under `options`, so Ollama silently ignores it. Don't rely on `num_ctx` to fix embedding VRAM contention; use a genuinely small embedding model instead.
A separate local `llama.cpp` server exists on this machine (managed via `~/llamacppctl-server_neu/llamacppctl/`, container name `llama_cpp_server`) but is **not** wired into this stack. It can be added later as an additional OpenAI-compatible provider through the Open Notebook UI (Settings → AI Providers) if needed — note it competes for the same GPU 1/2 VRAM as Ollama, so don't run large models on both simultaneously.
**Chat model context window:** the Ollama credential used for `qwen3.5:27b` (`credential:di8b31l16zikyyb6isyi`) has `num_ctx=98304` set explicitly. Without this, esperanto's `OllamaLanguageModel` silently defaults `num_ctx` to **8192** regardless of the model's real capability or `OLLAMA_CONTEXT_LENGTH` — any chat context (e.g. "full content" mode on a real document) beyond that gets truncated by Ollama, and because `qwen3.5:27b` is a thinking model, the truncated prompt frequently produces an empty final answer (the response is silently swallowed by `clean_thinking_content`) instead of a visible error — looks exactly like "chat gives no answer" from the UI. `98304` is the largest value that still keeps the whole model on GPU 1 (`ollama ps` shows `100% GPU`); `131072` spills ~91% onto CPU and makes a single response take 5-6 minutes instead of ~1-2. Even at 98304, a full-book "Volltext" chat (~70k+ tokens of context) takes ~2-3 minutes — that's inherent to processing that much context on one consumer GPU, not a bug. For large documents, the default short/RAG context mode (only relevant chunks, not the whole document) stays fast; reserve "Volltext" for shorter sources. If `qwen3.5:27b` ever gets swapped for a different Ollama chat model, re-check this credential's `num_ctx` still makes sense for its VRAM footprint.
**Podcast language + reliability — fixed via patched prompt templates (`prompts/podcast/`,
bind-mounted).** Two separate problems, one fix location:
1. *Language.* The episode profile's `language` field (`"de"` → resolved to `"German"`) **is**
passed into both `podcast_creator` prompt templates as a `{{ language }}` variable
(`nodes.py`, both `generate_outline_node` and `generate_transcript_node`), but the stock
templates shipped in the image never reference it — so setting `language` had no effect and
podcasts came out in English (the stock briefings and speaker backstories are English, which
is the only language signal the model then sees). English text read aloud by the German-locked
Chatterbox TTS is what produced the "English with a bad German accent" symptom.
2. *Reliability.* `qwen3.5:27b` is a thinking model. Podcast content is the **entire notebook**
(`Notebook.get_context()` → every source's full text + all insights; for a whole book that's
~70k+ tokens), fed into *each* transcript-segment call. On long segments the `<think>` block
eats the 5000-token response budget and the JSON gets truncated → `Invalid json output`
whole job fails. (Confirmed: `/no_think` cut a segment from 98s to 34s and left valid JSON.)
Fix — both handled in the two templates under `prompts/podcast/`, bind-mounted read-only over
the image's copies via `docker-compose.yml`:
- Prepended `/no_think` as the first line of both templates (Qwen honors it anywhere; harmless
text for non-Qwen models) — disables thinking, freeing the token budget and ~3x speedup.
- Added a `{% if language %}CRITICAL LANGUAGE REQUIREMENT … in {{ language }}{% endif %}` block
near the end of both templates, so the already-plumbed `language` field now actually forces the
output language.
The bundled briefings and speaker backstory/personality were **also** translated to German (belt
and suspenders; reduces English drift from the source content), but the template change is what
makes `language` authoritative. **Editing these templates requires a container restart** to take
effect — they're bind-mounted, and the mount is the directory `prompts/podcast/` (not individual
files, which go stale on inode-replacing edits). If you switch off `qwen3.5:27b`, the `/no_think`
line becomes inert but harmless.
If you create your own episode profile, just set `language` — the template handles the rest.
Add prune_podcast_data.py: clean up podcast data Open Notebook leaves behind Deleting an episode does not delete its data. DELETE /api/podcasts/episodes/{id} resolves episode.audio_file and unlinks that one MP3 — the enclosing data/podcasts/episodes/<uuid>/ directory, holding clips/ (one MP3 per dialogue segment), outline.json and transcript.json, is never touched. Failed and /retry-replaced runs leak a directory as well. Nothing reaps any of it: this deployment had 15 directories on disk against 4 episodes in the database. That is an upstream gap (roughly a shutil.rmtree of audio_path.parent.parent in that handler), not something configurable here. Deliberately not patched by bind-mounting a modified router — that would fork app logic into a deployment repo and rot silently against pull_policy: always. Local cleanup instead. scripts/prune_podcast_data.py reconciles the episode list from the API against the directories on disk and removes: - orphaned directories (no corresponding episode), and - clips/ of completed episodes, since the clips are intermediate output once the final MP3 exists. Dry-run by default; --yes applies, --keep-clips restricts it to orphans. Two guards, both tested: it aborts when any job is running/pending (a running job has no audio_file yet, so its working directory is indistinguishable from an orphan) and it skips directories touched within the last 60 minutes (--min-age). It also refuses to act if the API is unreachable, rather than guessing. Deletion runs inside the container (docker compose exec … rm -rf): the container writes as root, so the host user cannot remove those directories — a plain host-side rmtree fails with EPERM after the first directory. Verified on this deployment: freed 13 MB (10 orphaned dirs + clips of 3 episodes, 49 MB -> 36 MB); all four surviving episodes still stream byte-identical MP3s from /audio afterwards. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:14:19 +02:00
**Deleting an episode leaks its working directory (upstream gap).** `DELETE /api/podcasts/episodes/{id}`
(`api/routers/podcasts.py`) resolves `episode.audio_file` and calls `audio_path.unlink()` on it — the
final MP3 only. The enclosing `data/podcasts/episodes/<uuid>/` directory, holding `clips/` (one MP3 per
dialogue segment), `outline.json` and `transcript.json`, is never touched, and nothing else reaps it.
Failed and `/retry`-replaced runs leak a directory too (the retry writes a *new* episode row with a new
uuid dir; the old one loses its DB entry and just stays). Upstream this would be roughly
`shutil.rmtree(audio_path.parent.parent)` in that handler. We deliberately do **not** patch it here by
bind-mounting a modified router — that would fork app logic into a deployment repo and silently rot
against `pull_policy: always`. Instead: `scripts/prune_podcast_data.py` (dry-run by default, `--yes` to
apply) reconciles the episode list from the API against the directories on disk and removes orphans plus
the `clips/` of completed episodes. Two guards matter — it aborts if any job is `running`/`pending`
(a running job has no `audio_file` yet, so its directory is indistinguishable from an orphan) and it
skips directories touched in the last 60 minutes. **Deletion runs inside the container** (`docker compose
exec … rm -rf`), because the container writes as root and the host user can't remove those directories.
Fix YouTube sources with German transcripts landing empty Adding a German YouTube video created a source with a title but no content — nothing to chat with, nothing to summarise. The failure was silent in the UI; the reason only showed up in the container log as "Failed to get transcript for video <id> after retries: No suitable transcript found". Open Notebook extracts YouTube via content-core, which reads captions with youtube-transcript-api. content_core/processors/youtube.py only looks for the languages listed in preferred_languages, and the built-in default is ["en", "es", "pt"] — no German. All four fallback attempts in _fetch_best_transcript use that same list, so a video carrying only a German transcript raises NoTranscriptFound, get_best_transcript swallows it and returns None, and the source is stored with an empty body. The title still arrives because it is scraped separately, which is what makes this look like a success. The youtube_transcripts.preferred_languages key in the package's own cc_config.yaml appears to be the knob for this, but it is dead code on the default path: load_config() copies only the "extraction" block out of that file, so the key never reaches CONFIG and the hardcoded fallback always wins. The only way to set it is CCORE_CONFIG_PATH. config/content_core.yaml (bind-mounted read-only) therefore sets preferred_languages: ["de", "en", "es", "pt"]. Note CCORE_CONFIG_PATH REPLACES the config wholesale rather than merging it (config.py: return yaml.safe_load(file)). The file is consequently a full dump of the effective default config plus the new key — a minimal override file would silently drop the extraction engines and the model/timeout defaults. Its header comment carries the command that regenerates it from inside the container, for when an image update changes content-core's defaults. Verified end to end on the reported video (hzxiegk9QAg): extraction now yields 21553 characters of German transcript, the source is created through POST /api/sources with that full text, embedding produces 17 chunks in 3.4s, and vector search returns the video as top hit. This only covers caption languages. A video with no captions at all still yields an empty source — there is no download-and-transcribe fallback in the image. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:20:14 +02:00
### YouTube sources — German transcripts need `CCORE_CONFIG_PATH`
Open Notebook extracts YouTube via `content-core`, which pulls captions with `youtube-transcript-api`
(no `yt-dlp`/`pytube` in the image). `content_core/processors/youtube.py` only ever looks for the
languages in `preferred_languages`, and the built-in default is `["en", "es", "pt"]`**no German**.
All four fallback attempts in `_fetch_best_transcript` use that same list, so a video with only a
German transcript raises `NoTranscriptFound`, `get_best_transcript` swallows it and returns `None`,
and the source is created with an **empty body**. The title is still fetched (separate HTTP scrape),
so the failure is quiet: a source that looks fine but has no content, with the real reason only in
the container log (`Failed to get transcript for video <id> after retries`).
The `youtube_transcripts.preferred_languages` key in the package's `cc_config.yaml` looks like the
fix, but it is **dead code** on the default path: `load_config()` copies only the `extraction` block
out of `cc_config.yaml`, so the key never reaches `CONFIG` and the hardcoded `["en","es","pt"]`
fallback always wins. The only way to set it is `CCORE_CONFIG_PATH`.
Fix: `config/content_core.yaml` (bind-mounted read-only, `CCORE_CONFIG_PATH=/app/config/content_core.yaml`
in `docker-compose.yml`) sets `preferred_languages: ["de", "en", "es", "pt"]`.
**`CCORE_CONFIG_PATH` replaces the config wholesale — it does not merge** (`config.py`:
`return yaml.safe_load(file)`). So that file is a full dump of the effective default config plus the
`youtube_transcripts` key, not a small override; a minimal file would silently drop `extraction`
(engine selection) and the model/timeout defaults. Its header comment carries the one-liner that
regenerates it from inside the container — do that after an image update if content-core's defaults
change. The `openai`/`gpt-4o-mini` entries in it are content-core's internal defaults and are unused
here (Open Notebook picks its own models); they're only present because the file must be complete.
Note this only fixes *caption* languages. A video with no captions at all still yields an empty
source — there is no audio-download-and-transcribe fallback wired in.
### Text-to-speech / speech-to-text
Open Notebook's `openai_compatible` provider type talks to any endpoint implementing OpenAI's audio API shape (`POST /audio/speech`, `POST /audio/transcriptions` — see `esperanto.providers.tts.openai_compatible` / `.stt.openai_compatible` inside the app container for the exact contract). Since neither Ollama nor OpenRouter support TTS/STT, two thin wrapper servers in `services/` expose the locally installed tools this way:
- `services/tts_server.py` — wraps `chatterbox-tts` (via `~/chatterbox-tts-cli/chatterbox_cli_v4.py`), run with the `chatterbox` conda env (`~/miniforge3/envs/chatterbox/bin/python`).
- `services/stt_server.py` — wraps `faster-whisper` (`large-v3` model), run with the base `python3`.
Fix two podcast failures: dead TTS server after reboot + CUDA OOM Podcast generation failed twice at the audio stage, for two unrelated reasons that look similar from the UI but need opposite fixes. 1) TTS/STT ran as nohup background processes and silently did not survive a reboot. Podcasts then failed with "Failed to generate speech: All connection attempts failed" (httpx.ConnectError) even though outline and transcript had generated fine. Both now run as systemd user units. The unit files are versioned in services/systemd/ (using %h, not a hardcoded home) and installed by scripts/start_services.sh, which also enables linger so they start on boot without a login session. They pin GPU 2 by UUID, not by index: CUDA orders devices "fastest first", so index 2 can resolve to the T600. 2) GPU 2 is shared by three processes (TTS, STT and the separate chatterbox-tts MCP service on :9999), leaving ~12 GB of headroom. podcast_creator sends TTS_BATCH_SIZE (default 5) clips concurrently, and since /audio/speech is a sync FastAPI handler, they generated genuinely in parallel on one shared model. Activation memory multiplied, the TTS process hit 16.7 GB and threw torch.OutOfMemoryError, surfacing as "HTTP 500" from the endpoint. tts_server.py now serializes generation behind a lock (GPU-bound work, so parallelism buys no throughput — it only multiplies peak VRAM) and frees the cache afterwards. TTS_BATCH_SIZE=1 keeps the client from queuing requests in that lock and running into esperanto's 300s TTS timeout; ESPERANTO_TTS_TIMEOUT is raised to 600s as headroom. Verified: 5 concurrent /audio/speech requests all return 200 with GPU 2 peaking at ~11.5 GB (was 16.7 GB for the TTS process alone), and the previously failed episode now completes end to end — 38/38 batches, 10:56 min of audio, zero OOM. Docs record both failure signatures side by side, since ConnectError (server dead) and HTTP 500 (server alive, out of VRAM) have very different remedies. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:02:32 +02:00
Both run as **systemd user units**. The unit files live in the repo (`services/systemd/*.service`,
using `%h` rather than a hardcoded home) and `scripts/start_services.sh` installs them into
`~/.config/systemd/user/`, enables `linger` and starts them — so they come up on boot without a
login session. Re-run that script after editing a unit; it's idempotent. They log to the journal,
not to `services/logs/` (those files are leftovers from the earlier `nohup` setup):
```bash
Fix two podcast failures: dead TTS server after reboot + CUDA OOM Podcast generation failed twice at the audio stage, for two unrelated reasons that look similar from the UI but need opposite fixes. 1) TTS/STT ran as nohup background processes and silently did not survive a reboot. Podcasts then failed with "Failed to generate speech: All connection attempts failed" (httpx.ConnectError) even though outline and transcript had generated fine. Both now run as systemd user units. The unit files are versioned in services/systemd/ (using %h, not a hardcoded home) and installed by scripts/start_services.sh, which also enables linger so they start on boot without a login session. They pin GPU 2 by UUID, not by index: CUDA orders devices "fastest first", so index 2 can resolve to the T600. 2) GPU 2 is shared by three processes (TTS, STT and the separate chatterbox-tts MCP service on :9999), leaving ~12 GB of headroom. podcast_creator sends TTS_BATCH_SIZE (default 5) clips concurrently, and since /audio/speech is a sync FastAPI handler, they generated genuinely in parallel on one shared model. Activation memory multiplied, the TTS process hit 16.7 GB and threw torch.OutOfMemoryError, surfacing as "HTTP 500" from the endpoint. tts_server.py now serializes generation behind a lock (GPU-bound work, so parallelism buys no throughput — it only multiplies peak VRAM) and frees the cache afterwards. TTS_BATCH_SIZE=1 keeps the client from queuing requests in that lock and running into esperanto's 300s TTS timeout; ESPERANTO_TTS_TIMEOUT is raised to 600s as headroom. Verified: 5 concurrent /audio/speech requests all return 200 with GPU 2 peaking at ~11.5 GB (was 16.7 GB for the TTS process alone), and the previously failed episode now completes end to end — 38/38 batches, 10:56 min of audio, zero OOM. Docs record both failure signatures side by side, since ConnectError (server dead) and HTTP 500 (server alive, out of VRAM) have very different remedies. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:02:32 +02:00
systemctl --user status open-notebook-tts open-notebook-stt
systemctl --user restart open-notebook-tts # after editing tts_server.py or adding voices
journalctl --user -u open-notebook-tts -f
```
Fix two podcast failures: dead TTS server after reboot + CUDA OOM Podcast generation failed twice at the audio stage, for two unrelated reasons that look similar from the UI but need opposite fixes. 1) TTS/STT ran as nohup background processes and silently did not survive a reboot. Podcasts then failed with "Failed to generate speech: All connection attempts failed" (httpx.ConnectError) even though outline and transcript had generated fine. Both now run as systemd user units. The unit files are versioned in services/systemd/ (using %h, not a hardcoded home) and installed by scripts/start_services.sh, which also enables linger so they start on boot without a login session. They pin GPU 2 by UUID, not by index: CUDA orders devices "fastest first", so index 2 can resolve to the T600. 2) GPU 2 is shared by three processes (TTS, STT and the separate chatterbox-tts MCP service on :9999), leaving ~12 GB of headroom. podcast_creator sends TTS_BATCH_SIZE (default 5) clips concurrently, and since /audio/speech is a sync FastAPI handler, they generated genuinely in parallel on one shared model. Activation memory multiplied, the TTS process hit 16.7 GB and threw torch.OutOfMemoryError, surfacing as "HTTP 500" from the endpoint. tts_server.py now serializes generation behind a lock (GPU-bound work, so parallelism buys no throughput — it only multiplies peak VRAM) and frees the cache afterwards. TTS_BATCH_SIZE=1 keeps the client from queuing requests in that lock and running into esperanto's 300s TTS timeout; ESPERANTO_TTS_TIMEOUT is raised to 600s as headroom. Verified: 5 concurrent /audio/speech requests all return 200 with GPU 2 peaking at ~11.5 GB (was 16.7 GB for the TTS process alone), and the previously failed episode now completes end to end — 38/38 batches, 10:56 min of audio, zero OOM. Docs record both failure signatures side by side, since ConnectError (server dead) and HTTP 500 (server alive, out of VRAM) have very different remedies. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:02:32 +02:00
They were previously plain `nohup ... &` background processes, which silently did not survive a
reboot — a podcast then failed at the audio stage with `Failed to generate speech: All connection
attempts failed` (`httpx.ConnectError` against `host.docker.internal:8901`) even though outline
and transcript had generated fine. That's the signature of a dead TTS server, not a model problem.
Both units pin GPU 2 **by UUID** (`CUDA_VISIBLE_DEVICES=GPU-83ba6d1f-…`), not by index: GPU 1 is
occupied by Ollama's resident models (`OLLAMA_KEEP_ALIVE=-1` keeps them loaded), so TTS/STT go to
GPU 2 rather than racing Ollama for VRAM. The index form (`CUDA_VISIBLE_DEVICES=2`) is **not**
reliable here — CUDA's default device order is "fastest first", not nvidia-smi's PCI order, so
index 2 can resolve to the T600. Re-check the UUID with
`nvidia-smi --query-gpu=index,name,uuid --format=csv` if the GPUs are ever reseated.
#### GPU 2 is shared — TTS concurrency is capped on purpose
GPU 2 does **not** belong to the TTS server alone. Three processes sit on it: `open-notebook-tts`
(~4 GB idle-loaded), `open-notebook-stt` (faster-whisper `large-v3`, ~4 GB), and the unrelated
`chatterbox-tts.service` MCP server on port 9999 (~3.4 GB). That leaves roughly 12 GB of working
headroom, and TTS inference must fit inside it.
`podcast_creator` requests `TTS_BATCH_SIZE` clips **concurrently** (`asyncio.gather` per batch,
`nodes.py`; upstream default **5**). `tts_server.py`'s `/audio/speech` is a *sync* FastAPI handler,
so FastAPI runs each request in a threadpool thread — five clips therefore generate genuinely in
parallel on one shared model, and the activation memory multiplies. That drove the TTS process to
**16.7 GB** and produced `torch.OutOfMemoryError` inside chatterbox's `s3gen.embed_ref`, surfacing
in the app as `Failed to generate speech: OpenAI-compatible TTS endpoint error: HTTP 500`. Note
this is a *different* failure from the dead-server `ConnectError` above — a 500 means the server is
alive and rejecting the work, so check the TTS journal for the CUDA OOM before assuming a restart
will help.
Two changes keep it bounded, and both matter:
- **`tts_server.py` serializes generation behind `_GPU_LOCK`** (a `threading.Lock` around model load
+ the chunk loop, plus `torch.cuda.empty_cache()` afterwards). Generation is GPU-bound, so running
clips in parallel buys no throughput on a single card — it only multiplies peak VRAM. This is the
hard guarantee: it holds no matter which client calls, and no matter what batch size they use.
- **`TTS_BATCH_SIZE=1` in `docker-compose.yml`** so the client sends clips one at a time. Without
this, the lock still prevents the OOM, but 4 of the 5 batched requests sit queued in it — and with
~40-60 s per clip the last one approaches esperanto's **300 s** TTS timeout. `ESPERANTO_TTS_TIMEOUT=600`
is set alongside it as extra headroom for long segments.
Measured after the fix: 5 concurrent `/audio/speech` requests all return 200, GPU 2 peaks at
~11.5 GB total (vs. 16.7 GB for the TTS process alone before), i.e. ~12 GB of headroom left.
If you add another GPU-resident service to GPU 2, re-check that budget.
Reachability from the `open_notebook` container requires **two things**, both already done: the `extra_hosts: host.docker.internal:host-gateway` entry in `docker-compose.yml`, and UFW rules allowing inbound `8901/tcp` and `8902/tcp` (same pattern as the existing `11434/tcp` rule for Ollama — UFW defaults to deny-incoming, so any new host-side port a container needs to reach must be explicitly opened).
Registered in Open Notebook as `openai_compatible` credentials with `base_url=http://host.docker.internal:8901` (TTS) / `:8902` (STT), and set as `default_text_to_speech_model` / `default_speech_to_text_model`.
#### Voice cloning
`tts_server.py` resolves the incoming `voice` field via `services/voices/*.wav` (gitignored — personal voice recordings): `<name>.wav` becomes a selectable voice `"<name>"`, cloned via chatterbox's `audio_prompt_path`. Unknown/omitted voices fall back to `"default"`; a bare language code (e.g. `"en"`) still works and skips cloning (built-in voice for that language). All cloned voices are generated in German (`CLONE_LANG` in the script) since only German reference clips exist here — add entries to `VOICE_LANG_OVERRIDES` in the script if you add clips in other languages.
Three reference clips exist in `services/voices/` (gitignored, not committed):
- `default.wav` — symlink to `~/chatterbox-tts-cli/my_voice_deutsch_60s.wav`, the owner's own voice.
- `male_thorsten.wav` / `female_kerstin.wav` — synthesized with [Piper](https://github.com/rhasspy/piper) using the CC0-licensed `de_DE-thorsten-medium` and `de_DE-kerstin-low` voice models (downloaded from `huggingface.co/rhasspy/piper-voices`). Deliberately **not** real people's recordings scraped from the internet — Piper's voices are explicitly released for this kind of downstream synthesis/cloning use, unlike e.g. Common Voice (consented for ASR training, not cloning) or random web audio (no consent at all). Regenerate with:
```bash
piper --model de_DE-thorsten-medium.onnx --output_file male_thorsten.wav <<< "some German sentence"
```
Fix two podcast failures: dead TTS server after reboot + CUDA OOM Podcast generation failed twice at the audio stage, for two unrelated reasons that look similar from the UI but need opposite fixes. 1) TTS/STT ran as nohup background processes and silently did not survive a reboot. Podcasts then failed with "Failed to generate speech: All connection attempts failed" (httpx.ConnectError) even though outline and transcript had generated fine. Both now run as systemd user units. The unit files are versioned in services/systemd/ (using %h, not a hardcoded home) and installed by scripts/start_services.sh, which also enables linger so they start on boot without a login session. They pin GPU 2 by UUID, not by index: CUDA orders devices "fastest first", so index 2 can resolve to the T600. 2) GPU 2 is shared by three processes (TTS, STT and the separate chatterbox-tts MCP service on :9999), leaving ~12 GB of headroom. podcast_creator sends TTS_BATCH_SIZE (default 5) clips concurrently, and since /audio/speech is a sync FastAPI handler, they generated genuinely in parallel on one shared model. Activation memory multiplied, the TTS process hit 16.7 GB and threw torch.OutOfMemoryError, surfacing as "HTTP 500" from the endpoint. tts_server.py now serializes generation behind a lock (GPU-bound work, so parallelism buys no throughput — it only multiplies peak VRAM) and frees the cache afterwards. TTS_BATCH_SIZE=1 keeps the client from queuing requests in that lock and running into esperanto's 300s TTS timeout; ESPERANTO_TTS_TIMEOUT is raised to 600s as headroom. Verified: 5 concurrent /audio/speech requests all return 200 with GPU 2 peaking at ~11.5 GB (was 16.7 GB for the TTS process alone), and the previously failed episode now completes end to end — 38/38 batches, 10:56 min of audio, zero OOM. Docs record both failure signatures side by side, since ConnectError (server dead) and HTTP 500 (server alive, out of VRAM) have very different remedies. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-11 13:02:32 +02:00
Podcast speaker profiles are assigned across these three: `business_panel` (Marcus→male_thorsten, Elena→female_kerstin, Johny→default), `tech_experts` (Alex→male_thorsten, Jamie→female_kerstin), `solo_expert`/`test_speaker_local` (→female_kerstin/Anna). To add another distinct voice, drop a new `<name>.wav` (~10-30s, clean single-speaker audio, licensing-checked) into `services/voices/`, restart the TTS server (`systemctl --user restart open-notebook-tts` — voices are scanned once at startup), and set the speaker's `voice_id` to `<name>` via `PUT /api/speaker-profiles/{id}`.
## Secrets
`.env` (gitignored) holds `OPEN_NOTEBOOK_ENCRYPTION_KEY` (encrypts provider credentials stored in SurrealDB), `SURREAL_PASSWORD`, and `OPENROUTER_API_KEY`. `.env.example` is the committed template. Provider API keys can also be entered directly in the Open Notebook UI after first startup — the project's own docs recommend this over env vars for better security since they get encrypted at rest.
## Git
This directory is its own independent git repository (`main` branch) even though the parent home directory is also a git repo — this is intentional, not an accident to fix.