5fe8f228c1
Add a read-only /ecosystem page that consumes the sibling services' JSON APIs (Nexus entities, Praxis attention, Hexis capabilities), fetched concurrently with honest per-panel error states. Siblings stay headless — mavweb is their human surface (arch §16). Wired via mavweb -nexus/-praxis/-hexis flags; mavweb joins the ecosystem compose network. Fix mobile horizontal overflow across all pages: .content is a flex child with default min-width:auto, so it refused to shrink below the tables' intrinsic width. min-width:0 lets wide tables pan inside .scroll instead of dragging the page sideways. Verified via CDP geometry check (scrollWidth === clientWidth at 430px). Also includes in-progress Ethos UI redesign, ecosystem deploy compose, and planning docs. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
117 lines
4.4 KiB
Markdown
117 lines
4.4 KiB
Markdown
# Maven — Agent Context
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## Vikunja
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This repo maps to **Maven** (project ID: 2) in Vikunja.
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Feature work, bugs, deployment tasks all go here.
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MCP endpoint: `http://localhost:9100/mcp` (or `http://192.168.1.104:9100/mcp` from workpc)
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## Rendering / previewing the web UI locally
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To see mavweb pages with real data without touching the production stack:
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```sh
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R=/tmp/mvn-preview; mkdir -p $R
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go build -o $R/mavend ./cmd/mavend/ && go build -o $R/mavweb ./cmd/mavweb/
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cat > $R/mavend.json <<EOF
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{ "db_path": "$R/maven.db", "socket_path": "$R/mavend.sock",
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"state_dir": "$R", "tick_interval": "10s" }
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EOF
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$R/mavend -config $R/mavend.json &
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$R/mavweb -addr 127.0.0.1:9299 -core $R/mavend.sock &
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```
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- No models/voice/phraser config needed — the phraser stub covers it; mavend
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runs fine bare. mavweb serves `/`, `/dash`, `/history`, `/trace`,
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`/notifications`, `/tools`.
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- **Socket path must be short** — unix sockets cap at ~108 chars; a deep tmp
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dir fails with `bind: invalid argument`.
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- Seed data through `ipc.Client` (internal package — the seeder must live
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inside the module, e.g. a throwaway `cmd/seedtmp/main.go`, deleted after):
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`WriteFact`, `RecordNudge`+`ResolveNudge`, `CreateReminder`, `ProposeTool`.
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- `/trace` is empty until the first tick fires (wait one `tick_interval`).
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- Screenshots: `chromium --headless --disable-gpu --screenshot=out.png
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--window-size=1280,900 --hide-scrollbars --virtual-time-budget=2000
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http://127.0.0.1:9299/dash` (use `--window-size=430,900` for the phone/PWA
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view). **Always pass `--virtual-time-budget`** — without it the screenshot
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can snap mid-layout and silently drop elements (the PWA lang toggle
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"disappeared" this way).
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## Embedder model for intent routing
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The router uses a multilingual sentence embedder to classify intents and recall
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notes. Without it, the floor `HashEmbedder` is used — deterministic but weak
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(Russian recall rarely clears the confidence gate, many commands fall to
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"clarify").
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**Download the embedder** (ONNX, ~90 MB):
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```sh
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make download-embedder
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```
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This fetches `paraphrase-multilingual-MiniLM-L12-v2` (384-dim, 12-layer,
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supports 50+ languages including Russian) to `models/embedder/`.
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**Also need ONNX Runtime** (`libonnxruntime.so`):
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```sh
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curl -sL "https://github.com/microsoft/onnxruntime/releases/download/v1.15.1/onnxruntime-linux-x64-1.15.1.tgz" | tar xz
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sudo cp onnxruntime-linux-x64-1.15.1/lib/libonnxruntime.so* /usr/local/lib/
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```
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**Configure in `deploy/mavend.json`**:
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```json
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"voice": {
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"embedder": {
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"model_path": "models/embedder/model_quantized.onnx",
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"tokenizer_path": "models/embedder/tokenizer.json",
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"lib_path": "/usr/local/lib/libonnxruntime.so"
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}
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}
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```
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Without the embedder block, the daemon uses `HashEmbedder` (works, but weak on
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Russian recall — you may see many "clarify" responses).
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## Qwen3 resident model for router + phraser
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The target daemon uses the locally trained Qwen3-1.7B checkpoint for both
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routing and phrasing. Training is Qwen3 Base → RU CPT → joint persona/router
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SFT → merged GGUF. Without a configured model, `StubPhraser` plus the classifier
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remain the deterministic floor.
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During training, use the runbook in
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`docs/plans/2026-07-18-qwen3-resident-training-eval.md`. After the decision gate
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and SFT pass, copy the merged GGUF into the mounted model directory and set:
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```json
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"phraser": {
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"model_path": "/opt/maven/models/llm/Qwen3-Maven-1.7B-Q8_0.gguf",
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"bin_path": "llama-server",
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"n_gpu_layers": 99,
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"n_ctx": 2048
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}
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```
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**Configure in `deploy/mavend.json`** — the `phraser` block points at this
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model and the daemon spawns `llama-server` as a subprocess. The router and
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replier use the same llama-server via the shared `internal/llm` client.
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Telegram tokens are read from `deploy/telegram.env` (gitignored), expanded
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via `${VAR}` in the JSON config.
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**Routing is Qwen-first** with classifier fallback. The LLM router runs
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after stage-0 (exact-match grammar) and before the classifier cascade. On any
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error or parse failure, the classifier handles the utterance — the turn never
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breaks on the model.
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## Web UI conventions
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- All server-rendered pages share `cmd/mavweb/static/ui.css` (served at
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`/ui.css`) and the `nav` template partial (`navHTML` in `cmd/mavweb/main.go`,
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invoked as `{{template "nav" "<active-page>"}}`). New pages must link both —
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no per-page inline `<style>` beyond true one-offs.
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- Wrap every table in `<div class=scroll>` so wide data pans on a phone
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instead of breaking the layout.
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