* feat(extensions): add gateway services and routers * feat(extensions): add standalone reference extension * fix(extensions): harden contributed gateway routes * docs(extensions): document gateway contribution points * feat(extensions): add operator CLI for packaged extension management Add `deerflow extensions install/list/enable/disable/remove` plus the root `make extension-*` wrappers, backed by an `ExtensionManager` that owns one transaction over backend/pyproject.toml, backend/uv.lock, the managed source snapshot, the uv environment, and the `plugins:` block in config.yaml. Install accepts a package requirement, a public HTTPS Git URL, or a local directory. Local directories are copied to backend/extensions/sources/ as deployable snapshots rather than editable installs, and the root .dockerignore re-includes that tree so snapshots reach the backend builder. Remote sources are HTTPS-only; SSH Git, file:// and local wheels are rejected because the stock Docker builder cannot reproduce them. Because environment configuration can still resolve a plain package name to a local wheel (a UV_FIND_LINKS wheelhouse, say), every uv add/remove is followed by an audit of the new lock: any local reference the stock image build cannot reproduce rolls back the whole transaction. A config carrying duplicate top-level `plugins:` keys is rejected outright rather than managed against one block while the Gateway reads another. Dependency synchronization now has one lock authority. The `extensions` dependency group joins [tool.uv].default-groups, every startup path syncs the same lock with --locked and launches with --no-sync, and the Docker images move to uv 0.11.1 for the --no-workspace boundary the manager needs. Loader gains `enabled`, `name` and `package` fields so a disabled extension is skipped before resolution and import. Co-authored-by: Codex <codex@openai.com> * fix(extensions): stop the managed plugins rewrite from destroying config Two data-safety defects in the managed `plugins:` block writer. The "next top-level key" boundary was a regex matching only `[A-Za-z_][A-Za-z0-9_-]*` or a quoted key. `AppConfig` is `extra="allow"`, so a config may legally carry any top-level key, and a key the pattern cannot recognize did not fail loudly — it read as "no next section", and the rewrite replaced that neighbour and its entire subtree with the managed block. `my.key`, `2fa`, `$schema`, `my key` and non-ASCII keys were all silently deleted by a plain `extension-enable`/`disable`. Both boundaries now come from the YAML parser's node marks, so key shape is irrelevant. The file-final branch never consulted the trailing-comment scan the has-next-key branch used, so any comment below the block was dropped. Since the manager appends `plugins:` at end of file, that is the steady-state shape for most installs: an operator note below the block was destroyed on the next toggle. Separately, every managed install wrote `required: true` while the loader defaults to false. That turned any later load failure — broken wheel, missing native library, deleted snapshot — into a Gateway startup abort recoverable only with shell access. New records are now written `required: false`, with an explicit `install --required` opt-in; adopting an existing hand-written record still preserves the operator's own choice. * fix(extensions): harden the manager transaction and correct its docs Follow-up hardening on the extension package manager. Security posture, which the docs already claimed: - Scrub `UV_PYTHON`, `UV_INSECURE_HOST`, `UV_CONSTRAINT` and `UV_NO_BUILD_ISOLATION` from the controlled uv environment. `UV_PYTHON` swaps the interpreter that the entry-point probe then imports and calls, and every later `uv run --no-sync` startup uses; `UV_INSECURE_HOST` removes the TLS validation the HTTPS-only source rule depends on. Neither is an index, proxy, cache or credential-provider setting, so neither was covered by the carve-out. - Recognize run-together and all-caps secret query parameters (`accesstoken`, `ACCESSTOKEN`, `key`, `pw`, `sas`, `code`). The camel-case splitter only fires on case transitions, so only the separated spellings were caught. Short generic words stay boundary-anchored, so `?keyword=` remains installable. - Validate the config before running any uv command. `uv add`/`uv sync` execute the package's build backend, so a config the manager could never write to must fail before that code runs rather than afterwards through rollback. Transaction integrity: - Run the second dependency-file restore from a `finally`. The recovery sync runs without `--locked` when the checkout had no lock, so uv writes one while resolving; if that sync then failed, the restore was skipped and the operator kept a lock file they never had. A failing recovery sync now also reports the original failure instead of replacing it. - Skip the recovery sync on cancellation. Answering Ctrl-C with a full dependency resolve invites a second interrupt that escapes the handler and strands the checkout mid-transaction; the declarations are already restored and the next locked startup sync reconciles the environment. - Retry a non-blocking lock on Windows instead of using `msvcrt.LK_LOCK`, which gives up after ~10s — far shorter than a real `uv add` plus `uv sync`, so contention surfaced as `Permission denied` rather than serializing. - Locate the entry-point probe's JSON payload instead of parsing stdout's first line, so a `sitecustomize`/`.pth` banner cannot roll back a good install. - Warn when the lock records a loopback source. `127.0.0.1` inside the image builder is a different machine, but unlike an environment-driven wheelhouse resolution this is a source the operator typed deliberately, so it is reported rather than rolled back. Private-network indexes are untouched: a builder on that network can reach them. Docs: the blanket claim that failed operations restore the config file was wrong — the conflict branches deliberately preserve a concurrent external edit and leave `remove` deactivated. Document that, the `required: false` default, the config preflight, the interrupt behaviour, and where the plugins-block boundaries come from. * test(gateway): pin the request-path projection agreement `get_request_route_path()` imports the private `starlette._utils.get_route_path` so the auth and CSRF predicates classify the exact string Starlette's router matches on. Its requirement is not "strip root_path correctly" but "return what the dispatcher is matching", so delegating to the router's own implementation keeps the two in lockstep by construction. Keep the private import rather than vendoring a copy: an import that disappears fails loudly at startup, while a stale copy diverges silently at a security boundary. Cover the property directly instead of the mechanism, so the tests survive a future reimplementation: - projection edge cases, including the segment-boundary guard that keeps root_path="/api" from slicing "/apifoo/models" into a string the router would never match - agreement with the router under nested mounts - the two bypasses these predicates exist to prevent: a protected route mounted under the "/health" public prefix must still 401, and a POST mounted under "/api/webhooks" must still require a CSRF token Both are verified to fail when the projection is reverted to `request.url.path` (9/13 red) and when a plausible vendored copy omits the boundary guard (the 2 boundary cases red). Declare starlette as a bounded direct dependency so a bump — which is security-relevant here — shows up in review rather than arriving silently through FastAPI. * ci: pin uv to the version production ships ExtensionManager is not a consumer of uv the build tool -- it is a program whose whole job is driving `uv` as a subprocess, depending on its CLI behavior (`--no-workspace`, `--no-sync`, what `uv add` writes into `[dependency-groups] extensions`) and on the `uv.lock` serialization format. uv is closer to a runtime dependency with a contract than to incidental tooling. backend/Dockerfile pins that binary to 0.11.1, but all eight astral-sh/setup-uv steps installed whatever was latest at run time, so CI exercised the manager against a uv that is not the uv production runs. The sharpest failure that allows: a newer uv bumps uv.lock's `revision`, CI stays green because the same uv reads back what it wrote, and the pinned uv in the production image cannot read the committed lock. `uv lock --check` is version-sensitive for the same reason -- it verifies the lock is what *this* uv would produce, and two versions can emit equivalent but non-identical output. Pin every step to 0.11.1 and lift the one lingering setup-uv@v3 to v7 so the steps share input and caching behavior. Pinning alone drifts apart again on the next bump, so add a constraint test in the style of test_compose_default_bind_host.py: the Dockerfile's UV_IMAGE tag is the single source of truth, and both compose defaults plus every setup-uv step must match it. Verified to fail when a pin drifts, when a step omits `version`, and -- the real scenario -- when the Dockerfile is bumped alone, which lights up the workflows and both compose files at once. * fix(gateway): state the extension route auth limit and abort a failed dev sync Two scoped review follow-ups. README: contributed routers cannot enter the host's reserved public prefixes, which makes every extension endpoint session-authenticated -- there is no way to expose an unauthenticated route. The rejection rule was documented but its consequence was not, so inbound provider webhooks and public status endpoints read as merely undocumented rather than out of scope for this release. docker/dev-entrypoint.sh: the self-heal retry reuses `--locked`, so it repairs a corrupt .venv but never a lock that disagrees with pyproject.toml. `set -e` already stopped the script there -- uvicorn was not being started against a stale environment -- but it exited on a bare uv exit code with no indication of what to do. Abort explicitly with the cause and the fix. Tests slice the sync block out of the real script and run it against a stub uv, so they exercise the shipped code rather than a copy of it (/app/backend only exists inside the container). They cover the success path, the retry that recovers, the abort, and the guidance. Verified against the pre-fix script: only the guidance case goes red, confirming the abort itself was already correct. * fix(extensions): point Git SSH shorthand at the HTTPS correction Git's SCP-like shorthand carries no URL scheme, so `git+git@host:org/repo.git` reached the scheme rules looking like a bare path and was rejected with "local path references are not deployable; pass a local directory so DeerFlow can snapshot it". The operator asked for a remote source, so that guidance points at the wrong fix. Detect the shorthand ahead of the scheme rules and report the public-HTTPS correction instead. The bare `git@host:org/repo.git` spelling took a different wrong turn: packaging parses it as a direct reference named `git`, leaving `host:org/repo.git`, whose `host` reads as a URL scheme and produced the generic HTTPS message. Both spellings now share one message, as does the PEP 508 named form. * docs: keep the root extension summary within its new budget #4799 split the depth out of the module guides and added a size gate; the root file's job is now orientation, and this branch had pushed it 192 bytes past the soft limit. The manager transaction, source rules, and lock discipline are already stated in full in the extensions guide, so the root keeps the one-line orientation and points there instead of restating them. --------- Co-authored-by: Codex <codex@openai.com>
DeerFlow Backend
Language: English | 简体中文
DeerFlow is a LangGraph-based AI super agent with sandbox execution, persistent memory, and extensible tool integration. The backend enables AI agents to execute code, browse the web, manage files, delegate tasks to subagents, and retain context across conversations - all in isolated, per-thread environments.
Architecture
┌──────────────────────────────────────┐
│ Nginx (Port 2026) │
│ Unified reverse proxy │
└───────┬──────────────────┬───────────┘
│
/api/langgraph/* │ /api/* (other)
rewritten to /api/* │
▼
┌────────────────────────────────────────┐
│ Gateway API (8001) │
│ FastAPI REST + agent runtime │
│ │
│ Models, MCP, Skills, Memory, Uploads, │
│ Artifacts, Threads, Runs, Streaming │
│ │
│ ┌────────────────────────────────────┐ │
│ │ Lead Agent │ │
│ │ Middleware Chain, Tools, Subagents │ │
│ └────────────────────────────────────┘ │
└────────────────────────────────────────┘
Request Routing (via Nginx):
/api/langgraph/*→ Gateway LangGraph-compatible API - agent interactions, threads, streaming/api/*(other) → Gateway API - models, MCP, skills, memory, artifacts, uploads, thread-local cleanup/(non-API) → Frontend - Next.js web interface
Core Components
Lead Agent
The single LangGraph agent (lead_agent) is the runtime entry point, created via make_lead_agent(config). It combines:
- Dynamic model selection with thinking and vision support
- Middleware chain for cross-cutting concerns (9 middlewares)
- Tool system with sandbox, MCP, community, and built-in tools
- Subagent delegation for parallel task execution
- System prompt with skills injection, memory context, and working directory guidance
Middleware Chain
Middlewares execute in strict order, each handling a specific concern:
| # | Middleware | Purpose |
|---|---|---|
| 1 | ThreadDataMiddleware | Creates per-thread isolated directories (workspace, uploads, outputs) |
| 2 | UploadsMiddleware | Injects newly uploaded files into conversation context |
| 3 | SandboxMiddleware | Acquires sandbox environment for code execution |
| 4 | SummarizationMiddleware | Reduces context when approaching token limits (optional) |
| 5 | TodoListMiddleware | Tracks multi-step tasks in plan mode (optional) |
| 6 | TitleMiddleware | Auto-generates conversation titles after first exchange |
| 7 | MemoryMiddleware | Queues conversations for async memory extraction |
| 8 | ViewImageMiddleware | Injects image data for vision-capable models (conditional) |
| 9 | ClarificationMiddleware | Intercepts clarification requests and interrupts execution (must be last) |
Sandbox System
Per-thread isolated execution with virtual path translation:
- Abstract interface:
execute_command,read_file,write_file,list_dir - Providers:
LocalSandboxProvider(filesystem) andAioSandboxProvider(Docker, in community/). Async runtime paths use async sandbox lifecycle hooks so startup, readiness polling, and release do not block the event loop.AioSandboxProvidervalidates active-cache and warm-pool containers during acquire/reuse, dropping definitively dead entries so a thread can provision a fresh sandbox after an unexpected container exit while keepingget()as an in-memory lookup. Backend health-check failures are treated as unknown, not dead, and a container that cannot be verified during discovery is simply not adopted (acquire falls through to create instead of failing). - Virtual paths:
/mnt/user-data/{workspace,uploads,outputs}→ thread-specific physical directories - Skills path:
/mnt/skills→deer-flow/skills/directory - Skills loading: Recursively discovers nested
SKILL.mdfiles underskills/{public,custom}and preserves nested container paths - SkillScan: Native offline deterministic scanning runs before the LLM skill scanner on installs and agent-managed skill writes;
CRITICALfindings block and warning findings become LLM context - File-write safety:
str_replaceserializes read-modify-write per(sandbox.id, path)so isolated sandboxes keep concurrency even when virtual paths match - Tools:
bash,ls,read_file,write_file,str_replace(write_fileoverwrites by default and exposesappendfor end-of-file writes;bashis disabled by default when usingLocalSandboxProvider; useAioSandboxProviderfor isolated shell access)
Subagent System
Async task delegation with concurrent execution:
- Built-in agents:
general-purpose(full toolset) andbash(command specialist, exposed only when shell access is available) - Concurrency: Max 3 subagents per turn, 15-minute timeout
- Execution: Background thread pools with status tracking and SSE events
- Flow: Agent calls
task()tool → executor runs subagent in background → polls for completion → returns result
Memory System
LLM-powered persistent context retention across conversations:
- Automatic extraction: Analyzes conversations for user context, facts, and preferences
- Scope-safe writes: Middleware extraction stores only durable, descriptive user-level facts; global summaries also require descriptive authority, while contradiction removals and consolidated facts fail closed when scope metadata is missing or task/project-local
- Atomic replacements: A contradiction removal linked to a replacement runs only after the replacement survives scope/confidence gates, deduplication, and fact-limit trimming
- Structured storage: User context (work, personal, top-of-mind), history, and confidence-scored facts
- Debounced updates: Batches updates to minimize LLM calls (configurable wait time)
- System prompt injection: Top facts + context injected into agent prompts
- Run-level memory identity:
GET /api/threads/{thread_id}/runs/{run_id}/events?event_types=context:memoryreturns the SHA-256 identity of the effective hidden memory block without copying memory text into the event store - Storage: JSON file with mtime-based cache invalidation
Tool Ecosystem
| Category | Tools |
|---|---|
| Sandbox | bash, ls, read_file, write_file, str_replace |
| Built-in | present_files, ask_clarification, view_image, task (subagent) |
| Community | Tavily (web search), Jina AI (web fetch), Crawl4AI (web fetch), Firecrawl (scraping), fastCRW (scraping), DuckDuckGo (image search) |
| MCP | Any Model Context Protocol server (stdio, SSE, HTTP transports) |
| Skills | Domain-specific workflows injected via system prompt |
Gateway API
FastAPI application providing REST endpoints for frontend integration:
| Route | Purpose |
|---|---|
GET /api/models |
List available LLM models |
GET/PUT /api/mcp/config |
Manage MCP server configurations |
POST /api/mcp/cache/reset |
Reset cached MCP tools so they reload on next use |
GET/PUT /api/skills |
List and manage skills |
POST /api/skills/install |
Install skill from .skill archive |
GET /api/memory |
Retrieve memory data |
POST /api/memory/reload |
Force memory reload |
GET /api/memory/config |
Memory configuration |
GET /api/memory/status |
Combined config + data |
GET /api/threads/{id}/runs/{run_id}/events |
Debug/audit events for one run; filter event_types=context:memory for effective memory identity |
POST /api/threads/{id}/uploads |
Upload files (auto-converts PDF/PPT/Excel/Word to Markdown, rejects directory paths, auto-renames duplicate filenames in one request) |
GET /api/threads/{id}/uploads/list |
List uploaded files |
DELETE /api/threads/{id} |
Delete DeerFlow-managed local thread data after LangGraph thread deletion; unexpected failures are logged server-side and return a generic 500 detail |
GET /api/threads/{id}/artifacts/{path} |
Serve generated artifacts |
IM Channels
The IM bridge supports Feishu, Slack, and Telegram. Slack and Telegram still use the final runs.wait() response path, while Feishu now streams through runs.stream(["messages-tuple", "values"]), serializes rapid same-thread turns inside the channel manager, and updates a single in-thread card per source message in place.
Discord registers each typing-indicator loop before inbound message handling yields and refuses to start new typing work after the channel stops. Typing tasks are owned by the dedicated Discord event loop, so normal shutdown schedules bounded cancellation, awaiting, and map cleanup on that loop before closing the client. The Discord worker also drains the tasks in its finally block while its loop is still usable, covering disconnect and exception exits; if stop() encounters an already-stopped foreign loop, it never awaits those loop-bound tasks from the main loop. This serializes registration and cleanup across the main and Discord threads while preventing shutdown hangs and cross-loop RuntimeErrors.
For Feishu card updates, DeerFlow stores the running card's message_id per inbound message and patches that same card until the run finishes, preserving the existing OK / DONE reaction flow. When a follow-up arrives inside an existing Feishu topic while another turn is still running, the later message now waits on the mapped DeerFlow thread_id, receives a queued/running card on that exact source message, and keeps a compact source-message blockquote in subsequent patches so rapid consecutive questions remain distinguishable.
Quick Start
Prerequisites
- Python 3.12+
- uv package manager
- API keys for your chosen LLM provider
Installation
cd deer-flow
# Copy configuration files
cp config.example.yaml config.yaml
# Install backend dependencies
cd backend
make install
Configuration
Edit config.yaml in the project root:
models:
- name: gpt-4o
display_name: GPT-4o
use: langchain_openai:ChatOpenAI
model: gpt-4o
api_key: $OPENAI_API_KEY
supports_thinking: false
supports_vision: true
- name: gpt-5-responses
display_name: GPT-5 (Responses API)
use: langchain_openai:ChatOpenAI
model: gpt-5
api_key: $OPENAI_API_KEY
use_responses_api: true
output_version: responses/v1
supports_vision: true
Set your API keys:
export OPENAI_API_KEY="your-api-key-here"
Running
Full Application (from project root):
make dev # Starts Gateway + Frontend + Nginx
Access at: http://localhost:2026
Backend Only (from backend directory):
# Gateway API + embedded agent runtime
make dev
Direct access: Gateway at http://localhost:8001
Terminal Workbench (TUI) — a terminal-native UI over the embedded harness, no services required:
uv pip install 'deerflow-harness[tui]' # optional 'textual' dependency
deerflow # launch the TUI
deerflow --print "summarize this repo" # headless one-shot
deerflow --recursion-limit 250 --print "run a longer task"
Sessions opened in the TUI appear in the Web UI sidebar (it writes the shared
threads_meta store under the local default user). See docs/TUI.md.
Project Structure
backend/
├── packages/harness/ # deerflow-harness package (import: deerflow.*)
│ └── deerflow/
│ ├── agents/ # Agent system
│ │ ├── lead_agent/ # Main agent (factory, prompts)
│ │ ├── middlewares/ # Middleware components
│ │ ├── memory/ # Memory extraction & storage
│ │ └── thread_state.py # ThreadState schema
│ ├── sandbox/ # Sandbox execution
│ │ ├── local/ # Local filesystem provider
│ │ ├── sandbox.py # Abstract interface
│ │ ├── tools.py # bash, ls, read/write/str_replace
│ │ └── middleware.py # Sandbox lifecycle
│ ├── subagents/ # Subagent delegation
│ │ ├── builtins/ # general-purpose, bash agents
│ │ ├── executor.py # Background execution engine
│ │ └── registry.py # Agent registry
│ ├── tools/builtins/ # Built-in tools
│ ├── mcp/ # MCP protocol integration
│ ├── models/ # Model factory
│ ├── skills/ # Skill discovery & loading
│ ├── config/ # Configuration system
│ ├── runtime/ # Embedded run execution (RunManager, StreamBridge)
│ ├── persistence/ # Checkpointer/store engines & schema migrations
│ ├── guardrails/ # Pre-tool-call authorization providers
│ ├── tracing/ # Tracer factory & trace metadata
│ ├── uploads/ # Uploads manager
│ ├── tui/ # Terminal UI (`deerflow` console script)
│ ├── community/ # Community tools & providers
│ ├── reflection/ # Dynamic module loading
│ └── utils/ # Utilities
├── app/ # FastAPI Gateway + IM channels (import: app.*)
│ ├── gateway/ # Gateway API
│ │ ├── app.py # Application setup
│ │ └── routers/ # Route modules
│ └── channels/ # IM channel integrations
├── docs/ # Documentation
├── tests/ # Test suite
├── langgraph.json # LangGraph graph registry for tooling/Studio compatibility
├── pyproject.toml # Python dependencies
├── Makefile # Development commands
└── Dockerfile # Container build
langgraph.json is not the default service entrypoint. The scripts and Docker
deployments run the Gateway embedded runtime; the file is kept for LangGraph
tooling, Studio, or direct LangGraph Server compatibility.
Configuration
Main Configuration (config.yaml)
Place in project root. Config values starting with $ resolve as environment variables.
Key sections:
models- LLM configurations with class paths, API keys, thinking/vision flagstools- Tool definitions with module paths and groupstool_groups- Logical tool groupingssandbox- Execution environment providerskills- Skills directory pathstitle- Auto-title generation settingssummarization- Context summarization settingssubagents- Subagent system (enabled/disabled)memory- Memory system settings (enabled, storage, debounce, facts limits)
Provider note:
models[*].usereferences provider classes by module path (for examplelangchain_openai:ChatOpenAI).- If a provider module is missing, DeerFlow now returns an actionable error with install guidance (for example
uv add langchain-google-genai).
Extensions Configuration (extensions_config.json)
MCP servers and skill states in a single file:
{
"mcpServers": {
"github": {
"enabled": true,
"type": "stdio",
"command": "npx",
"args": ["-y", "@modelcontextprotocol/server-github"],
"env": {"GITHUB_TOKEN": "$GITHUB_TOKEN"}
},
"secure-http": {
"enabled": true,
"type": "http",
"url": "https://api.example.com/mcp",
"oauth": {
"enabled": true,
"token_url": "https://auth.example.com/oauth/token",
"grant_type": "client_credentials",
"client_id": "$MCP_OAUTH_CLIENT_ID",
"client_secret": "$MCP_OAUTH_CLIENT_SECRET"
}
},
"postgres": {
"enabled": false,
"type": "stdio",
"command": "npx",
"args": ["-y", "@modelcontextprotocol/server-postgres", "postgresql://localhost/mydb"],
"description": "PostgreSQL database access",
"routing": {
"mode": "prefer",
"priority": 50,
"keywords": ["orders", "users", "SQL", "database", "table"]
},
"tools": {
"query": {
"routing": {
"priority": 100,
"keywords": ["query database", "orders table", "metrics"]
}
}
}
}
},
"skills": {
"pdf-processing": {"enabled": true}
}
}
routing adds soft MCP preference hints to the agent prompt. It helps the
model prefer a configured MCP tool for matching requests without forbidding
other tools. When tool_search.enabled=true defers MCP schemas, matching
routing metadata can auto-promote up to tool_search.auto_promote_top_k
deferred schemas before the model call.
Environment Variables
DEER_FLOW_CONFIG_PATH- Override config.yaml locationDEER_FLOW_EXTENSIONS_CONFIG_PATH- Override extensions_config.json location- Model API keys:
OPENAI_API_KEY,ANTHROPIC_API_KEY,DEEPSEEK_API_KEY, etc. - Tool API keys:
TAVILY_API_KEY,GITHUB_TOKEN, etc.
LangSmith Tracing
DeerFlow has built-in LangSmith integration for observability. When enabled, all LLM calls, agent runs, tool executions, and middleware processing are traced and visible in the LangSmith dashboard.
Setup:
- Sign up at smith.langchain.com and create a project.
- Add the following to your
.envfile in the project root:
LANGSMITH_TRACING=true
LANGSMITH_ENDPOINT=https://api.smith.langchain.com
LANGSMITH_API_KEY=lsv2_pt_xxxxxxxxxxxxxxxx
LANGSMITH_PROJECT=xxx
Legacy variables: The LANGCHAIN_TRACING_V2, LANGCHAIN_API_KEY, LANGCHAIN_PROJECT, and LANGCHAIN_ENDPOINT variables are also supported for backward compatibility. LANGSMITH_* variables take precedence when both are set.
Langfuse Tracing
DeerFlow also supports Langfuse observability for LangChain-compatible runs.
Add the following to your .env file:
LANGFUSE_TRACING=true
LANGFUSE_PUBLIC_KEY=pk-lf-xxxxxxxxxxxxxxxx
LANGFUSE_SECRET_KEY=sk-lf-xxxxxxxxxxxxxxxx
LANGFUSE_BASE_URL=https://cloud.langfuse.com
If you are using a self-hosted Langfuse deployment, set LANGFUSE_BASE_URL to your Langfuse host.
Dual Provider Behavior
If both LangSmith and Langfuse are enabled, DeerFlow initializes and attaches both callbacks so the same run data is reported to both systems.
If a provider is explicitly enabled but required credentials are missing, or the provider callback cannot be initialized, DeerFlow raises an error when tracing is initialized during model creation instead of silently disabling tracing.
Docker: In docker-compose.yaml, tracing is disabled by default (LANGSMITH_TRACING=false). Set LANGSMITH_TRACING=true and/or LANGFUSE_TRACING=true in your .env, together with the required credentials, to enable tracing in containerized deployments.
Development
Commands
make install # Install dependencies
make dev # Run Gateway API + embedded agent runtime with safe reload (port 8001)
make gateway # Run Gateway API without reload (port 8001)
make lint # Run linter (ruff)
make format # Format code (ruff)
make detect-blocking-io # Inventory blocking IO that may block the backend event loop
make migrate-rev MSG="..." # Autogenerate a new alembic revision against the live ORM models
make dev pre-creates and excludes DEER_FLOW_HOME (by default
backend/.deer-flow) and backend/sandbox from Uvicorn's reload watcher. Use
this target instead of a bare uvicorn --reload: agent tasks write Python and
other runtime files under DEER_FLOW_HOME, and watching that directory can
restart the Gateway during an active run.
Schema Migrations
DeerFlow's application tables (runs, threads_meta, feedback, users,
run_events, and the channel_* tables) are owned by alembic. The Gateway
runs alembic upgrade head automatically on startup via
bootstrap_schema(engine, backend=...), so operators do not run alembic
manually in production. Bootstrap is concurrency-safe (Postgres advisory lock
across processes; per-engine asyncio.Lock inside one SQLite process) and
idempotent against pre-existing schemas (empty / legacy / versioned).
When you add or change an ORM model, ship the change as a new revision under
packages/harness/deerflow/persistence/migrations/versions/:
make migrate-rev MSG="add foo column to runs"
The target invokes scripts/_autogen_revision.py, which builds a fresh temp
SQLite at head and diffs the live models against it — so a clean checkout
does not need a pre-existing ./data/deerflow.db. Review the generated file
and switch raw op.add_column / op.drop_column calls to the idempotent
helpers in migrations/_helpers.py before committing. There is no
make migrate / make migrate-stamp target on purpose — Gateway startup is
the only execution path, which keeps operational mistakes off the table. See
backend/CLAUDE.md (Schema Migrations) for the full design.
Code Style
- Linter/Formatter:
ruff - Line length: 240 characters
- Python: 3.12+ with type hints
- Quotes: Double quotes
- Indentation: 4 spaces
Testing
# Offline backend suite (live external-API tests are excluded)
make test
# Explicit real-API DeerFlowClient integration suite
make test-live
The live suite requires a valid root config.yaml and API credentials. It may
incur API costs or create local sandboxes, artifacts, and files, so it is not
part of default test runs or CI. Direct pytest invocation of
tests/test_client_live.py also requires
DEER_FLOW_RUN_LIVE_TESTS=1.
make detect-blocking-io statically scans backend business code for blocking
IO that may run on the backend event loop and is not test-coverage-bound. It
prints a concise summary for human review and writes complete JSON findings to
.deer-flow/blocking-io-findings.json at the repository root (regardless of
whether the target is invoked from the repo root or from backend/). JSON
findings include both broad IO category and review-oriented fields such as
priority, location, blocking_call, event_loop_exposure, reason, and
code. priority is a deterministic review ordering from the operation type,
not proof of a bug. Bare-name same-file calls are resolved by function name,
so duplicate helper names in one file can conservatively over-report async
reachability.
Technology Stack
- LangGraph (1.0.6+) - Agent framework and multi-agent orchestration
- LangChain (1.2.3+) - LLM abstractions and tool system
- FastAPI (0.115.0+) - Gateway REST API
- langchain-mcp-adapters - Model Context Protocol support
- agent-sandbox - Sandboxed code execution
- markitdown - Multi-format document conversion
- tavily-python / firecrawl-py - Web search and scraping
Documentation
- Configuration Guide
- Architecture Details
- API Reference
- File Upload
- Path Examples
- Context Summarization
- Plan Mode
- Setup Guide
License
See the LICENSE file in the project root.
Contributing
See CONTRIBUTING.md for contribution guidelines.