routeflow
Real-time execution flow visualization for FastAPI applications.
FastAPI documents the contract of an API — routes, params, response shapes — but says nothing about what actually happens when a request runs. As soon as an app grows past a few endpoints, execution logic spreads across services, middleware, dependencies, and background tasks, and debugging means mentally reconstructing a flow that should have been visible in the first place.
routeflow makes that flow visible: mark a function with @track, and
every request that calls it gets traced — order, timing, logs, and errors —
and rendered live as an interactive node graph in a tab next to your
Swagger docs.
Status: functional for local development — the tracer, middleware, in-memory store, and flow-view UI all work end to end.
Quickstart
pip install routeflow
from fastapi import FastAPI
from routeflow import RouteFlow
from routeflow.tracing import track
app = FastAPI()
RouteFlow(app)
@track
def charge_card(amount: int) -> None:
... # call out to whatever actually charges the card
@app.post("/orders")
def create_order(amount: int):
charge_card(amount)
return {"amount": amount, "status": "ok"}
Run it — uvicorn myapp:app, or uvicorn[standard] / pip install websockets if you only have plain uvicorn; the flow view's live updates
need a WebSocket implementation that plain uvicorn doesn't include, and
silently can't connect without one — hit POST /orders, then open:
http://127.0.0.1:8000/flow/
That's the flow view — pick an endpoint in the sidebar, pick a trace, and you'll see the request's actual call tree: which functions ran, in what order, how long each took, and — if something raised — exactly where.
What @track gives you
- Nested spans, for free. Call another
@track-decorated function from inside one, and the call tree builds itself viacontextvars— no manual parent/child wiring. - Sync and async. Works on both
defandasync defthe same way. - Arguments, captured and redactable. Call args are recorded on the
span by name; pass
redact=to mask specific ones (a password, a token) orcapture_args=Falseto skip a function entirely. - Errors, observed not altered. An exception is recorded on the span and then always re-raised unchanged — RouteFlow never changes what your code does, only what you can see about it.
The flow view
- Sidebar lists every endpoint that's been hit, with request count, p95 latency, and error rate.
- Pick an endpoint to see its recent traces; pick a trace to see its node graph — timing and status on every node, an error highlighted exactly where it happened.
- Updates live over a WebSocket as new requests come in — no refresh needed.
- Sits in its own tab next to your existing Swagger
/docs, light/dark themed.
Turning it off
RouteFlow is on by default — it's a dev tool, and "add one line, it just works" is the point. But traces can include captured arguments and full stack traces, so it must never ship to production silently:
ROUTEFLOW_ENABLED=0
set in the environment disables it completely — no middleware installed, no
route mounted, your app handed back untouched. RouteFlow(app, enabled=False)
does the same from code, e.g. enabled=settings.debug.
How much history it keeps
Every request is traced — there's no sampling yet. max_traces controls how
many finished traces stay in memory at once (default 500):
RouteFlow(app, max_traces=200)
It's a ring buffer, not a hard cutoff: once full, the oldest trace is dropped as each new one lands, so the flow view always shows your most recent activity rather than erroring out or growing without bound on a long-running dev server.
Try it
examples/demo_app.py is a small shop app with a
nested call tree and one request that fails on purpose, so there's
something worth looking at the first time you open the flow view:
uv run --with fastapi --with "uvicorn[standard]" python examples/demo_app.py
For something closer to a real production call tree — service/repository/
gateway/client layers, concurrent asyncio.gather fan-out, argument
redaction, a deterministic failure and a flaky one — see
examples/production_demo.py (same run
command, different filename).
How it works
See ARCHITECTURE.md for the mechanism: the
contextvars-based span model, the ASGI middleware that opens/closes a
trace per request, the in-memory ring buffer, and the mounted REST/WebSocket
server the flow view reads from.
Development
This project uses uv for dependency management.
uv sync --extra dev # install package + dev deps into .venv
uv run pytest -q # run tests
uv run routeflow about # run the CLI
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