Files
roboco/CLAUDE.md
T
Renn F 71f068ea6c docs: refresh user-facing docs for the features shipped since 0.8.0
Documentation had drifted behind the post-0.8.0 work. Adds a CHANGELOG [Unreleased] section, documents the three new feature flags in the config reference (and removes the retired ROBOCO_RAG_USE_HYDE), a new Architectural Conventions Standard page, the provider-overload break in CLAUDE.md, the >=3.13 Python floor + feature flags in the README, and the toolchain/conventions delivery gates + structured-note model across the developer / QA / PR-reviewer role docs and the task-model doc.
2026-06-22 13:42:38 +02:00

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# CLAUDE.md
This file provides guidance to Claude Code (claude.ai/code) when working with code in this repository.
## Licensing
RoboCo is licensed under **AGPL-3.0** (see `LICENSE`). Copyright (c) 2026 Renzo Franceschini. Do NOT reintroduce an MIT or other license reference anywhere (README, headers, package metadata) — the project is AGPL.
Contributions require a signed **Contributor License Agreement** (`CLA.md`), automated via the CLA Assistant workflow (`.github/workflows/cla.yml`). The CLA preserves the option to dual-license / offer a commercial edition later; keep copyright assignment language intact. See `CONTRIBUTING.md`.
## Project Overview
**RoboCo** is an AI Agentic Company - a virtual organization of 25 AI agents + 1 human CEO, designed to operate as a complete software development workforce. The system implements a structured organizational hierarchy with formal communication protocols, task management, and quality controls.
### Core Architecture
```
CEO (Renzo - Human)
|
+-- Intake (on-demand interviewer: chats only with the CEO to draft a task)
+-- Secretary (on-demand chief-of-staff: reads company state, runs gated CEO directives)
+-- PR Reviewer (read-only: the main reviewer — inbound external/fork + internal PRs, and the root→master in-path gate)
|
+-- Board (3 agents)
+-- Product Owner
+-- Head of Marketing
+-- Auditor (silent observer, reports to CEO)
|
+-- Main PM (coordinates all cells)
|
+-- Backend Cell (6 agents: 2 Devs, 1 QA, 1 PM, 1 Documenter, 1 PR Reviewer)
+-- Frontend Cell (6 agents: 2 Devs, 1 QA, 1 PM, 1 Documenter, 1 PR Reviewer)
+-- UX/UI Cell (6 agents: 2 Devs, 1 QA, 1 PM, 1 Documenter, 1 PR Reviewer)
```
### Hardware Infrastructure
- **Olares One (Powerhouse)**: Intel Ultra 9 + RTX 5090, runs Claude Code instances and AI inference - NOT YET ARRIVED
- **UGREEN NAS (Warehouse)**: 36TB RAID6, 128GB RAM, hosts PostgreSQL, Redis
- **Pi Cluster (Operations)**: Monitoring, notifications, smart home
## Development Standards
### Python (Backend)
```bash
# Package manager
uv
# Before any commit
uv run ruff format .
uv run ruff check .
uv run mypy roboco/
uv run pytest
# Coverage target: 80%
```
### TypeScript (Frontend)
```bash
# Package manager
pnpm
# Before any commit
pnpm format
pnpm lint
pnpm typecheck
pnpm test
# Coverage target: 80%
```
## Technology Stack
| Layer | Technology |
|-------|------------|
| API Framework | FastAPI |
| Database | PostgreSQL + asyncpg |
| Vector Store | PostgreSQL + pgvector (in-house engine) |
| RAG Engine | in-house (asyncpg + pgvector, hybrid retrieval) |
| Cache/Queue | Redis |
| Container Runtime | Docker + Docker Compose |
| Cloud LLM | Claude API (claude-opus-4-6) + xAI Grok (official `grok` CLI, SuperGrok subscription) |
| Local LLM | Ollama (glm-5:cloud for RAG/hybrid retrieval) |
| Embeddings | qwen3-embedding:0.6b (1024 dim) |
| Frontend | Next.js 16 + TypeScript + Tailwind + Radix UI (in `panel/`) |
| Edge / Proxy | nginx (single entry point on port 3000) |
## Multi-Agent Workspace Structure
Each agent gets their own git clone of a project, enabling parallel development without conflicts:
```
{ROBOCO_WORKSPACES_ROOT}/ # Default: /data/workspaces
+-- {project-slug}/
+-- {team}/
+-- {agent-slug}/
+-- [git repository]
```
**Example:**
```
/data/workspaces/
+-- roboco/
+-- backend/
| +-- be-dev-1/ # be-dev-1's workspace
| +-- be-dev-2/ # be-dev-2's workspace
+-- frontend/
+-- fe-dev-1/
+-- fe-dev-2/
```
Note: the Next.js control panel now lives at `roboco/panel/` inside this repo (no longer a separate `roboco-panel` project or workspace).
**Key Configuration (roboco/config.py):**
- `ROBOCO_WORKSPACES_ROOT`: Root directory for workspaces (default: `/data/workspaces`)
- `ROBOCO_WORKSPACE_AUTO_CLONE`: Auto-clone repos on first access (default: `true`)
- `ROBOCO_WORKSPACE_CLONE_TIMEOUT`: Clone timeout in seconds (default: `300`)
On a Python workspace, `WorkspaceService` runs `uv sync --extra dev` (not plain `uv sync`) so the clone's `.venv` carries the full gate toolchain (ruff/mypy/xenon/pytest) — the lint/type/complexity tools live in the `dev` **extra**, which plain `uv sync` skips. Without it an agent's `make quality` fails on `ruff: command not found` and the agent can't gate its own work.
## Git Workflow
### Branch Naming Convention
Branch names follow the pattern: `{type}/{team}/{task-hierarchy}`
**Types:** `feature`, `bug`, `chore`, `docs`, `hotfix`
**Task Hierarchy:** Uses `--` separator (not `/`) to avoid git ref conflicts.
**Examples:**
- Root task: `feature/backend/ABC12345`
- Subtask: `feature/backend/ABC12345--DEF67890`
- Sub-subtask: `feature/backend/ABC12345--DEF67890--GHI11111`
### Commit Format
Commits are automatically prefixed with the task ID:
```
[{task-id[:8]}] {message}
```
**Example:**
```
[ABC12345] Add user authentication endpoint
```
### Work Sessions
When a developer claims a task, a **WorkSession** is created that tracks:
- Branch name and base/target branches
- All commits made during the session
- Files modified
- PR number/URL when created
- Merge status and who merged
### Git Credentials
Git authentication is managed **per-project** through encrypted GitHub PATs:
- **Each project stores its own git token** - no global fallback
- **Tokens are encrypted at rest** using Fernet symmetric encryption
- **API never exposes tokens** - only returns `has_git_token: boolean`
- **Self-service via UI** - users set/update tokens in project settings
**Project fields:**
| Field | Description |
|-------|-------------|
| `git_token_encrypted` | Fernet-encrypted GitHub PAT (DB column) |
| `has_git_token` | Boolean indicator for API responses |
**Token flow:**
1. User creates project in UI, enters GitHub PAT
2. Token encrypted and stored in `projects.git_token_encrypted`
3. WorkspaceService decrypts token when cloning repos
4. GitService decrypts token for PR operations (gh CLI)
**HTTPS URLs require tokens** - attempting to clone without a token will raise `WorkspaceError`.
## Task Lifecycle
### Task States
The complete task lifecycle is defined in `roboco/foundation/policy/lifecycle.py` (`roboco/enforcement/task_lifecycle.py` is a backwards-compat shim over it):
```
backlog -> pending -> claimed -> in_progress -> [blocked|paused] -> verifying
| |
v v
awaiting_qa <------------------+ awaiting_documentation
| (needs_revision) | |
v | v
awaiting_documentation --------+ awaiting_pm_review
| |
v v
awaiting_pm_review awaiting_ceo_approval
| |
v v
completed completed
```
**In-path PR-review gate** (`awaiting_pr_review`): each assembled PR is reviewed before the PM merges. The cell PM's `submit_up` opens the cell→root PR and the Main PM's `submit_root` opens the root→master PR; both enter `awaiting_pr_review`, where a reviewer `pr_pass`es it on to `awaiting_pm_review` or `pr_fail`s it back to `needs_revision` — the merge-level reject the PM otherwise lacks. Leaf dev tasks and branchless coordination roots skip the gate.
**States:**
| State | Description |
|-------|-------------|
| `backlog` | PM setup phase - dependencies or session setup needed |
| `pending` | Ready for work - orchestrator can spawn agents |
| `claimed` | Agent has locked the task |
| `in_progress` | Active development |
| `blocked` | External dependency blocking progress |
| `paused` | Temporarily stopped (can resume) |
| `verifying` | Self-verification by developer |
| `needs_revision` | QA or CEO requested changes |
| `awaiting_qa` | Submitted for QA review — PR must already exist |
| `awaiting_documentation` | Documentation phase — PR already open from pre-QA; doc writes docs |
| `awaiting_pr_review` | In-path PR-review gate: a reviewer checks the assembled cell→root / root→master PR before the PM merges (assembled, PR-bearing tasks only) |
| `awaiting_pm_review` | Docs complete, PM reviews + merges |
| `awaiting_ceo_approval` | Major tasks escalated for CEO final approval |
| `completed` | Terminal state - work done and merged |
| `cancelled` | Terminal state - work cancelled |
### Role-Based Transitions
All status transitions are validated through the enforcement layer. Key restrictions:
| Transition | Allowed Roles |
|------------|---------------|
| `backlog``pending` (activate) | PM roles only |
| `pending``claimed` (claim) | Role must match task type (QA for awaiting_qa, etc.) |
| `claimed``pending` (unclaim) | Assignee or PM |
| `awaiting_qa``awaiting_documentation` (pass) | QA only |
| `awaiting_qa``needs_revision` (fail) | QA only |
| `awaiting_documentation``awaiting_pm_review` | Documenter or Developer (parallel completion) |
| `in_progress``awaiting_pr_review` (submit_up / submit_root) | PM roles (opens the assembled cell→root / root→master PR) |
| `awaiting_pr_review``awaiting_pm_review` (pr_pass) | PR reviewer only |
| `awaiting_pr_review``needs_revision` (pr_fail) | PR reviewer only |
| `awaiting_pm_review``completed` | PM roles only |
| `awaiting_pm_review``awaiting_ceo_approval` | PM roles only |
| `awaiting_ceo_approval``completed/needs_revision/cancelled` | CEO only |
| Any → `cancelled` | PM roles only |
**Unclaim Operation**: Agents can release claimed tasks back to the pool using `unclaim()`. This transitions `claimed``pending` and optionally reassigns to another agent.
### Git Integration Requirements
All tasks follow git workflow. PR is created BEFORE QA review (not after) so QA can review the real PR diff on GitHub and downstream PM/CEO approval chain off a PR that already exists:
1. **claimed -> in_progress**: `branch_name` is auto-set on claim (hierarchical branches)
2. **verifying -> awaiting_qa** (submit-qa): Requires `self_verified`, `commits`, `pr_number` (PR open), and at least one `progress_updates` entry
3. **awaiting_qa -> awaiting_documentation** (pass-qa): Requires `pr_number` and substantive QA notes
4. **awaiting_documentation -> awaiting_pm_review**: Requires `docs_complete=True` (PR already exists from step 2 above)
5. **awaiting_pm_review -> awaiting_ceo_approval**: Must have `pr_number` set and all subtasks in a terminal state
### CEO Approval Workflow
Major tasks are escalated to CEO for final approval:
1. PM reviews and approves, escalates to `awaiting_ceo_approval`
2. CEO can:
- **Approve**: Merges PR, task -> `completed`
- **Request changes**: Task -> `needs_revision`
- **Cancel**: Task -> `cancelled`
## Data Models
### Core Models (roboco/models/)
| Model | Purpose |
|-------|---------|
| `Task` | Atomic unit of work with acceptance criteria |
| `Project` | Git repository configuration and CI/CD commands |
| `WorkSession` | Links agent work to task, tracks branch/commits/PR |
| `Agent` | AI agent with role, team, capabilities |
| `Session` | Communication session with messages |
| `Channel` | Team communication channel |
| `Message` | Extracted message from agent streams |
| `Notification` | Formal notification requiring acknowledgment |
| `Journal` | Agent personal log for reflections/learnings |
### Task Model Key Fields
```python
# Git configuration (all tasks follow git workflow)
task_type: TaskType # code, documentation, research, planning, design, administrative
project_id: UUID # Project this task works on (required)
branch_name: str # Branch for this task (auto-created on claim)
work_session_id: UUID # Active work session
# PR tracking (parallel execution in awaiting_documentation)
pr_number: int # GitHub/GitLab PR number
pr_url: str # Full URL to PR
docs_complete: bool # Documenter has finished
pr_created: bool # Developer has created PR
# Commits linked to task
commits: list[CommitRef] # All commits made for this task
```
## Communication Model
**Communication** = constant stream (always flowing, logged, observed) **Notifications** = formal signals (require acknowledgment, sent by PMs/Board only)
### Channel Structure
- Cell channels: `#backend-cell`, `#frontend-cell`, `#uxui-cell`
- Cross-cell: `#dev-all`, `#qa-all`, `#pm-all`, `#doc-all`
- Management: `#main-pm-board`, `#board-private`
- Special: `#announcements` (read-only except Board/Main PM), `#all-hands`
The Auditor has silent read access to ALL channels.
## Key Principles
1. **Everything is a task** - All work is tracked and documented
2. **No work without a task** - Create task record first
3. **No task without acceptance criteria** - How do we know it's done?
4. **No closure without documentation** - Future agents need context
5. **Communication is constant** - Stream reasoning, log everything
6. **State is sacred** - If interrupted, state must be recoverable
7. **The Auditor sees all** - Quality monitored silently
8. **Commits linked to tasks** - Every commit references its task ID
9. **CEO approves major changes** - Escalation path for important work
## Agent Gateway
Agents do not call the API or per-domain MCP tools directly. They go through two thin MCP servers (`roboco-flow`, `roboco-do`) backed by the server-side **Choreographer** in `roboco/services/gateway/`. The Choreographer composes the existing services (TaskService, JournalService, GitService, etc.) into intent-verb sequences. Tracing, claim-locking, evidence assembly, and remediation hints are all centralized there.
Each agent gets a **spawn manifest** at `/app/tool-manifest.json` listing the verbs its role is allowed to call. The orchestrator builds the manifest from `roboco/services/gateway/role_config.py` and mounts it read-only into the agent container.
### Verb surface (canonical source: `lifecycle.intents_for_role`; every role also gets `i_am_idle`)
| Role | Flow verbs (beyond `i_am_idle`) |
|---------------|--------------------------------------------------------------------------------------------------|
| developer | `give_me_work`, `i_will_work_on`, `open_pr`, `i_am_done`, `i_am_blocked`, `resume`, `unclaim` |
| qa | `give_me_work`, `claim_review`, `pass_review`, `fail_review`, `i_am_blocked`, `resume`, `unclaim` |
| documenter | `give_me_work`, `claim_doc_task`, `i_documented`, `i_am_blocked`, `resume`, `unclaim` |
| cell_pm | `give_me_work`, `i_will_plan`, `delegate`, `complete`, `submit_up`, `triage`, `unblock`, `escalate_up`, `reassign`, `resume`, `unclaim` |
| main_pm | `give_me_work`, `i_will_plan`, `delegate`, `complete`, `submit_root`, `triage`, `triage_all`, `unblock`, `escalate_up`, `escalate_to_ceo`, `resume`, `unclaim` |
| pr_reviewer | `give_me_work`, `claim_pr_review`, `post_pr_review` (inbound external/fork PRs), `claim_gate_review`, `pr_pass`, `pr_fail` (in-path assembled-PR gate) |
| product_owner | `triage`, `escalate_to_ceo` |
| head_marketing| `triage`, `escalate_to_ceo` |
| auditor | `triage` (read-only — no `say`/`dm`) |
| prompter | (none beyond `i_am_idle` — not a delivery-lifecycle role; intake interviewer, human-only) |
| secretary | (none beyond `i_am_idle` — human-only chief-of-staff; reads company state + runs gated CEO directives) |
Content tools (do_server) — most roles: `commit`, `note`, `say`, `dm`, `evidence`. Auditor is restricted to `note` (scope=reflect) + `evidence`. The `pr_reviewer` posts its change-request on the PR itself (no agent comms). The `prompter` (intake) and `secretary` are restricted to `note` + `evidence` — human-only, no `say`/`dm`/`notify`.
### MCP servers running per agent container
| Server | Purpose |
|----------------------|----------------------------------------------------------------------|
| `roboco-flow` | Intent verbs (give_me_work, i_am_done, claim_review, complete, ...) |
| `roboco-do` | Content tools (commit, note, say, dm, evidence) |
| `roboco-git-readonly`| Read-only git: status, log, diff, branches |
| `roboco-optimal` | RAG: `roboco_ask_mentor`, `roboco_kb_search` |
| `roboco-docs` | Project docs file management (selected roles) |
Every verb returns a standardized **Envelope**:
- ok: `{status, task_id, next, evidence?, context_briefing}`
- error: `{error, message, remediate, missing}`
The `next` field tells the agent what to call next; the `remediate` field on errors tells them exactly how to fix and retry. Agents should not guess state — trust the response.
## Agent Providers
Agent backends are pluggable. `roboco/llm/providers/` defines an `AgentProvider` lifecycle ABC (`base.py`) and a `ProviderRegistry` keyed by `ModelProvider` (`registry.py`), with `ClaudeCodeProvider` (default) and `GrokCliProvider`. The orchestrator resolves a provider at spawn from the agent's `ModelProvider`; when no dedicated provider is registered it falls back to the built-in Claude Code spawn. `ModelProvider` (`roboco/models/base.py`) is `ANTHROPIC` (default), `GROK`, `LOCAL`, `OLLAMA_CLOUD`, `OPENAI` (reserved). The seam is additive: only `GROK` routes through `GrokCliProvider`; Anthropic / Ollama Cloud / self-hosted spawns are unchanged, and every provider gets the same MCP gateway + tool-manifest wiring by construction.
**Grok runtime.** `GROK` agents run xAI's official `grok` CLI (model `grok-build`) authenticated by a **SuperGrok subscription**, not a metered API key — so a Grok workforce can't stall mid-task on out-of-credits. The host `~/.grok/auth.json` is mounted **read-only** into each agent (`GrokCliProvider._append_grok_auth_mount`; `ROBOCO_HOST_GROK_DIR` is the host mount source, set up once with `grok login`). It reaches parity with the Claude path by construction: same MCP gateway + manifest, per-role tool-removal and git-operation deny rules, a prompt-injection guard on the task prompt, headless tool auto-approval, and per-agent token/cost capture from the grok session store. It covers both one-shot delivery roles and the interactive Intake (Prompter) and Secretary chats (per-turn `grok -p` with session resume).
**Token auto-refresh.** The grok access token has a fixed ~6h server-set TTL and the CLI cannot refresh it headlessly — on an expired token it hangs forever at an interactive login prompt. The orchestrator mints a fresh token from the offline-access refresh token (xAI's OIDC `refresh_token` grant) before expiry and rewrites the shared `auth.json` in place (`roboco/llm/providers/grok_auth.py` `refresh_if_stale`, run once per dispatch tick; the orchestrator's `~/.grok` mount is read-write so it can rewrite it). As a backstop the agent entrypoint runs `python -m roboco.llm.providers.grok_auth --check` and refuses to start (exit 78) on a missing/expired token instead of hanging.
## Self-Healing & Feature Flags
**Self-healing CI loop (default-off).** RoboCo can watch its own repository's CI (a single named workflow) and, on a detected regression, open a fix task that is held out of dispatch until the CEO approves it (it terminates at `awaiting_ceo_approval`), then dispatch it through the normal delivery flow. It is dormant by default and armed by `ROBOCO_SELF_HEAL_ENABLED` plus a second opt-in `ROBOCO_SELF_HEAL_ORIGINATE_ENABLED`; origination is bounded by `ROBOCO_SELF_HEAL_MAX_OPEN_TASKS` / `_MAX_PER_CYCLE` so it can't flood the backlog. It never auto-merges or self-deploys (`roboco/services/self_heal_engine.py`).
**Feature flags / company-in-a-box.** Env-gated, default-off subsystems toggle from the panel's Settings → Feature Flags card (`panel/src/components/settings/feature-flags-card.tsx`) instead of hand-editing env: web research (`ROBOCO_RESEARCH_ENABLED`), the strategy engine (`ROBOCO_STRATEGY_ENGINE_ENABLED`), pitch provisioning (`ROBOCO_PROVISIONING_*`), external / internal PR review, the agent-runtime toolchain match (`ROBOCO_TOOLCHAIN_MATCH_ENABLED`), the architectural-conventions standard (`ROBOCO_CONVENTIONS_ENABLED`), and the self-heal flags above. A toggle persists in the settings store and takes effect on the next backend restart; an unset flag falls back to its environment / config default.
## Architectural Conventions Standard
**Per-project architectural standard (default-off).** Beyond the `make`-style gates (which check syntax/types/tests, not *where code lives*), each project can carry a repo-canonical `.roboco/conventions.yml` — an architecture map (which definition *kinds* belong in which modules), a toggleable rule set, custom regex rules, and waivers — so an agent cannot land a Pydantic model defined inside a router, a helper in a route file, or a `# noqa` / `# type: ignore`. Gated by `ROBOCO_CONVENTIONS_ENABLED`; fully inert when off.
**Effective map.** Consumers read the *effective* map — auto-derived defaults (from a repo scan + `BUILTIN_RULES`) overlaid by the committed file — so behaviour is identical whether the file is present, absent, or partial. `ConventionsService` (`roboco/services/conventions.py`) builds it, caches it per `(project, HEAD sha)` in `project_conventions_cache` (migration `043`), renders the per-task baseline constraints + the ambient prompt block, and scaffolds/restores the file via a PR (`GitService.open_conventions_pr`). The schema lives in `roboco/foundation/policy/conventions/` (pure).
**Validator.** A single Python CLI, `python -m roboco.conventions check --root <repo> --files <a> <b> ...` (`roboco/conventions/`), uses tree-sitter (Python + TypeScript grammars, shipped in the agent image) to classify each changed definition and flag forbidden placements + hygiene + custom-rule matches as JSONL findings, after waiver filtering. Precision over recall (it abstains when uncertain so a `block` gate can't false-positive-strand a task) and fail-loud (a validator that cannot run exits 3 so the gate blocks, never silently passes).
**Threading + enforcement.** The standard reaches the work two ways: an ambient "Architectural Standard" block injected at spawn (`compose_prompt`) and an auto-attached `## Constraints` section on every project task (`TaskService.create`). Enforcement is deterministic: a `block`-level finding refuses `i_am_done` (dev pre-submit) and `pr_pass` (the in-path PR gate) with the offending `file:line` + fix hint; findings also surface in QA's `claim_review` evidence (`convention_findings`). A false positive is relieved by a `waiver` the dev commits in their branch — accountable, reviewed in the PR. The panel's per-project Conventions tab (in the edit-project dialog) shows the map + health and offers Save / Restore.
## Services
Core services in `roboco/services/`:
| Service | Purpose |
|---------|---------|
| `TaskService` | Task CRUD and state transitions |
| `WorkSessionService` | Git session management, PR lifecycle |
| `WorkspaceService` | Multi-agent workspace resolution and cloning |
| `ProjectService` | Project/repository management |
| `MessagingService` | Channels, sessions, messages |
| `NotificationService` | Formal notifications |
| `JournalService` | Agent journals and entries |
| `OptimalService` | RAG queries (in-house pgvector engine) |
| `PermissionsService` | Role-based access control |
## Configuration
Key settings in `roboco/config.py` (env prefix: `ROBOCO_`):
```bash
# Database
ROBOCO_DATABASE_HOST=localhost
ROBOCO_DATABASE_PORT=5432
ROBOCO_DATABASE_USER=roboco
ROBOCO_DATABASE_PASSWORD=roboco
ROBOCO_DATABASE_NAME=roboco
# Redis
ROBOCO_REDIS_HOST=localhost
ROBOCO_REDIS_PORT=6379
# Security (REQUIRED)
# Generate with: python -c 'from cryptography.fernet import Fernet; print(Fernet.generate_key().decode())'
ROBOCO_ENCRYPTION_KEY=<your-fernet-key>
# Workspaces
ROBOCO_WORKSPACES_ROOT=/data/workspaces
ROBOCO_WORKSPACE_AUTO_CLONE=true
ROBOCO_WORKSPACE_CLONE_TIMEOUT=300
# RAG (in-house pgvector engine)
ROBOCO_RAG_CHUNK_STRATEGY=fixed
ROBOCO_RAG_CHUNK_SIZE=512
ROBOCO_RAG_USE_HYDE=true
ROBOCO_RAG_USE_HYBRID_SEARCH=true
# AI/LLM
ROBOCO_DEFAULT_EMBEDDING_MODEL=qwen3-embedding:0.6b
ROBOCO_LOCAL_LLM_MODEL=glm-5:cloud
ROBOCO_LOCAL_LLM_BASE_URL=http://roboco-ollama:11434/v1
ROBOCO_OLLAMA_BASE_URL=http://roboco-ollama:11434
```
## Docker Deployment
### Container Architecture
The system runs as Docker Compose services. All Dockerfiles live under `docker/` at the project root; every service uses `context: .` plus `dockerfile: docker/<name>.Dockerfile`.
| Service | Purpose | Healthcheck |
|---------|---------|-------------|
| `postgres` | PostgreSQL + pgvector | `pg_isready` |
| `redis` | Cache, sessions, event bus | `redis-cli ping` |
| `ollama` | Local LLM + embeddings | `ollama list` |
| `ollama-init` | Pulls models on startup | One-shot |
| `agent-base-image` / `agent-*-image` | Pre-built images spawned per agent | One-shot |
| `orchestrator` | API + agent spawner | Depends on all above |
| `panel` | Next.js control panel (internal, port 3000) | — |
| `nginx` | Reverse proxy fronting panel + orchestrator | — |
### Single Entry Point
`nginx` is the only externally-exposed service. It listens on `localhost:3000` and routes:
- `/api/*` and `/ws/*``orchestrator:8000`
- everything else → `panel:3000`
This avoids CORS since the browser sees one origin. The Next.js code uses relative URLs (`/api`, `/ws`) and lets nginx do the dispatch.
### WebSocket streams
The orchestrator exposes WebSocket endpoints under `/ws` (router in `roboco/api/websocket.py`, `ConnectionManager` + `broadcast_*` helpers):
| Endpoint | Purpose |
|----------|---------|
| `/ws/channels/{id}`, `/ws/agents/{id}`, `/ws/sessions/{id}`, `/ws/notifications/{id}` | Per-resource live streams |
| `/ws/system` | Operator/system-wide stream (no per-agent keying) — the rate-limit lifecycle (`RATE_LIMIT_HIT` / `RATE_LIMIT_LIFTED`) and live usage (`USAGE_SNAPSHOT`, pushed to the usage dashboard) |
Server-side events reach these sockets through `roboco/api/websocket_bridge.py`, which subscribes to the `StreamEventBus` and forwards each event to the matching connections. To add a new live event: define an `EventType` (dotted value), publish it to the bus, add a `_handle_*` forwarder in `websocket_bridge`, and consume it on the panel via the `useWebSocket("/<endpoint>", …)` hook — do not stand up a parallel endpoint or client stack.
### Rate limiting & usage
- **Provider rate limits** are tracked in Redis (`RateLimitStateTracker`, `roboco/services/gateway/`). On a provider 429 an agent calls `i_am_blocked(reason="rate_limited")`; the spawn gate then **queues** (never drops) further work for that provider, and a background probe-and-resume loop in the orchestrator clears the limit and revives parked agents when it lifts.
- **Provider overloads** reuse the same park-and-probe break. A persistent model-API overload (HTTP 529 / 500 / 503 — the SDK already retries transient ones) parks the provider exactly like a 429 instead of crash-retrying the agent straight back into the overload and burning tokens; the overload is detected orchestrator-side from the dead container's log markers, and the background loop revives the parked work when it recovers. Gated by `ROBOCO_OVERLOAD_BREAK_ENABLED` (default-on).
- **Token usage** is captured per agent session from the Claude Code transcript via the SDK server's `/usage/sync` (hook → orchestrator finalize → `agent_spawn_sessions``daily_usage_rollups` → dashboard). Cost uses provider-aware pricing in `roboco/billing/pricing.py` (Anthropic priced; local/Ollama intentionally `$0`). The token sweep also publishes `USAGE_SNAPSHOT` to `/ws/system`, so the dashboard's "Token Usage & Cost" panel updates live and falls back to HTTP polling when the stream is down.
### Startup Sequence
The startup order is critical due to dependencies:
```
postgres ──┐
redis ─────┼──> ollama ──> ollama-init ──> orchestrator ──> panel ──> nginx
│ │ │
│ │ └── Pulls qwen3-embedding:0.6b, glm-5:cloud
│ └── Healthcheck: ollama list
└── Healthcheck: pg_isready, redis-cli ping
```
**Important timing notes:**
1. `ollama-init` pulls models (~30s for embedding model, ~2min for LLM)
2. Orchestrator waits for models before starting
3. FastAPI lifespan indexes documents using Ollama (~30-60s)
4. Orchestrator polls `/health` until API is ready before starting dispatcher
5. After orchestrator is up, `panel` (Next.js) builds/starts, then `nginx`
### Database migrations
Schema changes ship as Alembic migrations under `alembic/versions/`. Run:
```bash
docker compose exec orchestrator alembic upgrade head
```
after pulling any change that adds a new migration.
### Ollama Configuration
Ollama provides two APIs:
- `/v1/*` - OpenAI-compatible API (for LLM chat/completion)
- `/api/*` - Native Ollama API (for embeddings, model management)
The embedder uses `/api/embed` endpoint with the `qwen3-embedding:0.6b` model.
**Environment variables for Docker:**
```bash
ROBOCO_LOCAL_LLM_BASE_URL=http://roboco-ollama:11434/v1 # OpenAI-compat
ROBOCO_OLLAMA_BASE_URL=http://roboco-ollama:11434 # Native API
```
### Common Issues
| Symptom | Cause | Fix |
|---------|-------|-----|
| `404 /api/embed` | Model not pulled | Check `docker logs roboco-ollama-init` |
| `All connection attempts failed` | API not ready | Orchestrator starts before FastAPI lifespan completes |
| Healthcheck failing | Wrong endpoint | Use `ollama list` not `curl` |
## Blueprint Reference
The organizational structure, communication matrix, role descriptions, and access-control model are documented inline above and in the published `docs/` tree (per-area `README.md` files, `usage.md`, `deployment.md`).