## Summary
Removes the standalone `agent.context_window.snapshot` event and instead
attaches the context-window projection directly to `agent.message`. This
eliminates the async provider token-count API calls that the old
approach required, and simplifies the event log to a single event type
carrying all post-response agent data.
## What Changed and Why
**Before:** After each LLM turn, the agent emitted a separate
`agent.context_window.snapshot` event — first a local estimate, then
potentially a second one after an async `count_input_tokens` call
resolved (or after response usage arrived). This required fingerprint
deduplication state, a `close_token` to cancel in-flight counts, and
frontend handling for the extra event type.
**After:** The `AgentEvent::AssistantMessage` variant carries an
`Option<StageContextWindowProjection>`. The projection is computed
locally at request-build time and then refined using response token
usage when available (`ResponseUsageScaledBreakdown`), or kept as a
`LocalEstimate` when response usage is absent. No provider API calls are
made.
### Plan Summary
- **Task 1:** Added `context_window:
Option<StageContextWindowProjection>` to `AgentMessageProps` (Rust types
+ OpenAPI), removed `AgentContextWindowSnapshotProps` and
`EventBody::AgentContextWindowSnapshot`.
- **Task 2:** Removed the spawned `count_input_tokens` task,
`close_token`, fingerprint sets, and both snapshot-emit methods from
`Session`. Added `context_window_from_response_usage` to
`context_window.rs`; `BuiltRequest` now holds the local projection
instead of the tool list.
- **Task 3:** Workflow conversion copies `context_window` from
`AgentEvent::AssistantMessage` into `AgentMessageProps`; store reducer
reads it from `AgentMessage` instead of the removed snapshot variant and
stamps `event_seq`.
- **Task 4:** GET endpoint tests updated to seed data via
`agent.message` with embedded context-window; endpoint behavior
unchanged.
- **Task 5:** Frontend constant and tests for
`agent.context_window.snapshot` removed; `agent.message` already
invalidates `stageContextWindow` through existing stage-activity
handling. TypeScript client regenerated with the new `AgentMessageProps`
model.
### Key Design Decisions
- **No provider token-count API calls** during normal execution —
context-window accuracy relies on local estimates scaled by response
usage, which is always available for successful turns.
- **Failed-before-response turns** emit no context-window data
(`context_window: None`), matching the old behavior where a snapshot
would have been emitted but response-usage scaling would never arrive.
- `BuiltRequest` drops the `tools` field (only needed for the
now-removed snapshot emission path); the local projection is computed at
build time and stored directly.
### Fabro Details
<details>
<summary>Ran 8 stages in 60m 3s for $55.78</summary>
| Stage | Duration | Cost | Retries |
|---|---|---|---|
| start | 0s | – | 0 |
| toolchain | 1s | – | 0 |
| preflight_compile | 2m 1s | – | 0 |
| preflight_lint | 2m 16s | – | 0 |
| implement | 30m 39s | $44.82 | 0 |
| simplify_opus | 10m 48s | $4.03 | 0 |
| simplify_gpt | 5m 1s | $6.93 | 0 |
| verify | 8m 47s | – | 0 |
| **Total** | **60m 3s** | **$55.78** | **0** |
</details>
<details>
<summary>Ran <code>ImplementPlan.fabro</code> (11 nodes and 14
edges)</summary>
```dot
digraph ImplementPlan {
graph [
goal="Implement and simplify",
model_stylesheet="
* { model: claude-opus-4-7; }
"
]
rankdir=LR
start [shape=Mdiamond, label="Start"]
exit [shape=Msquare, label="Exit"]
toolchain [label="Toolchain", shape=parallelogram, script="command -v cargo >/dev/null || { curl --proto '=https' --tlsv1.2 -sSf https://sh.rustup.rs | sh -s -- -y && sudo ln -sf $HOME/.cargo/bin/* /usr/local/bin/; }; cargo --version 2>&1", max_retries=0]
preflight_compile [label="Preflight Compile", shape=parallelogram, script="cargo check -q --workspace 2>&1", max_retries=0]
preflight_lint [label="Preflight Lint", shape=parallelogram, script="cargo +nightly-2026-04-14 clippy -q --workspace --all-targets -- -D warnings 2>&1", max_retries=0]
fix_lints [label="Fix Lints", prompt="The preflight lint step failed. Read the build output from context and fix all clippy lint warnings.", max_visits=3]
implement [label="Implement", prompt="Read the plan file referenced in the goal and implement every step. Make all the code changes described in the plan. Use red/green TDD.", model="gpt-55", reasoning_effort="xhigh"]
simplify_opus [label="Simplify (Opus)", prompt="@prompts/simplify.md"]
simplify_gpt [label="Simplify (GPT-55)", prompt="@prompts/simplify.md", model="gpt-55"]
verify [label="Verify", shape=parallelogram, script="git fetch origin main 2>&1 && git merge --no-edit --no-stat origin/main 2>&1 && cargo +nightly-2026-04-14 fmt --all 2>&1 && cargo dev docs refresh 2>&1 && cargo +nightly-2026-04-14 fmt --check --all 2>&1 && { command -v rg >/dev/null 2>&1 || { echo 'rg is required for verify'; exit 127; }; } && ! rg -n 'AuthMode::Disabled|RunAuthMethod|RunSubjectProvenance|\bActorRef\b|\bActorKind\b|AuthenticatedSubject|AuthenticatedService|AuthorizeRunScoped|AuthorizeRunBlob|AuthorizeStageArtifact|AuthorizeCommandLog|auth_method\s*==\s*\"disabled\"' lib/crates apps lib/packages docs/public/api-reference/fabro-api.yaml 2>&1 && cargo +nightly-2026-04-14 clippy --workspace --all-targets -- -D warnings 2>&1 && cargo nextest run --workspace --status-level slow --profile ci 2>&1 && cargo dev docs check 2>&1 && bun install --frozen-lockfile 2>&1 && (cd apps/fabro-web && bun run typecheck) 2>&1 && (cd apps/fabro-web && bun run test) 2>&1 && (cd lib/packages/fabro-api-client && bun run typecheck) 2>&1 && cargo dev build -- -p fabro-cli --release 2>&1", goal_gate=true, retry_target="fixup"]
fixup [label="Fixup", prompt="The verify step failed. Read the build output from context and fix all format, clippy, Rust test, docs, TypeScript typecheck/test, and build failures.", max_visits=3]
start -> toolchain
toolchain -> preflight_compile [condition="outcome=succeeded"]
toolchain -> exit
preflight_compile -> preflight_lint [condition="outcome=succeeded"]
preflight_compile -> exit
preflight_lint -> implement [condition="outcome=succeeded"]
preflight_lint -> fix_lints
fix_lints -> preflight_lint
implement -> simplify_opus -> simplify_gpt -> verify
verify -> exit [condition="outcome=succeeded"]
verify -> fixup
fixup -> verify
}
```
</details>
⚒️ Generated with [Fabro](https://fabro.sh)
---------
Co-authored-by: Fabro <noreply@fabro.sh>
Co-authored-by: Bryan Helmkamp <bryan@brynary.com>
|
||
|---|---|---|
| .ai/prompts | ||
| .cargo | ||
| .claude | ||
| .config | ||
| .fabro | ||
| .github | ||
| apps | ||
| bin/agent | ||
| docker | ||
| docs | ||
| evals/swe-bench | ||
| installer | ||
| lib | ||
| test | ||
| .dockerignore | ||
| .env.example | ||
| .gitattributes | ||
| .gitignore | ||
| AGENTS.md | ||
| bun.lock | ||
| Cargo.lock | ||
| Cargo.toml | ||
| CLAUDE.md | ||
| clippy.toml | ||
| CONTRIBUTING.md | ||
| docker-compose.local.yaml | ||
| docker-compose.prod.yaml | ||
| docker-compose.yaml | ||
| Dockerfile | ||
| install.md | ||
| install.sh | ||
| LICENSE.md | ||
| package.json | ||
| README.md | ||
| rustfmt.toml | ||
The open source dark software factory for expert engineers
AI coding agents are powerful but unpredictable. You either babysit every step or review a 50-file diff you don't trust. Fabro gives you a middle path: define the process as a graph, let agents execute it, and intervene only where it matters. Why Fabro?
# With Claude Code
curl -fsSL https://fabro.sh/install.md | claude
# With Codex
codex "$(curl -fsSL https://fabro.sh/install.md)"
# With Homebrew
brew install fabro-sh/tap/fabro-nightly
# With Bash
curl -fsSL https://fabro.sh/install.sh | bash
Then run fabro server start to finish setup in your browser. The server opens a web wizard, exits when the wizard completes, and starts in configured mode the next time you run it.
Use Cases
- Extend disengagement time — Stop babysitting an agent REPL. Define a workflow with verification gates and walk away — Fabro keeps the process on track without you.
- Leverage ensemble intelligence — Seamlessly combine models from different vendors. Use one model to implement, another to cross-critique, and a third to summarize — all in a single workflow.
- Share best practices across your team — Collaborate on version-controlled workflows that encode your software processes as code. Review, iterate, and reuse them like any other source file.
- Reduce token bills — Route cheap tasks to fast, inexpensive models and reserve frontier models for the steps that need them. CSS-like stylesheets make this a one-line change.
- Improve agent security — Run agents in cloud sandboxes with full network and filesystem isolation. Keep untrusted code off your laptop and out of your production environment.
- Run agents 24/7 — Fabro's API server queues and executes runs continuously. Close your laptop — workflows keep running and results are waiting when you return.
- Scale infinitely — Move execution off your laptop and into cloud sandboxes. Run as many concurrent workflows as your infrastructure allows.
- Guarantee code quality — Layer deterministic verifications — test suites, linters, type checkers, LLM-as-judge — into your workflow graph. Failures trigger fix loops automatically.
- Inspect every run — Query durable event streams, checkpoints, conclusions, and stage outputs to understand what happened and improve the workflow.
- Specify in natural language — Define requirements as natural-language specs and let Fabro generate — and regenerate — implementations that conform to them.
Key Features
| Feature | Description | |
|---|---|---|
| 🔀 | Deterministic workflow graphs | Define pipelines in Graphviz DOT with branching, loops, parallelism, and human gates. Diffable, reviewable, version-controlled |
| 🙋 | Human-in-the-loop | Approval gates pause for human decisions. Steer running agents mid-turn. Interview steps collect structured input |
| 🎨 | Multi-model routing | CSS-like stylesheets route each node to the right model and provider, with automatic fallback chains |
| ☁️ | Cloud sandboxes | Run agents in isolated Daytona cloud VMs with snapshot-based setup, network controls, and automatic cleanup |
| 🔌 | SSH access and preview links | Shell into running sandboxes with fabro sandbox ssh and expose ports with fabro sandbox preview for live debugging |
| 🌲 | Git checkpointing | Every stage commits code changes and execution metadata to Git branches. Resume, revert, or trace any change |
| 📊 | Run observability | Durable events, checkpoints, conclusions, and stage outputs make every run inspectable and exportable |
| ⚡ | Comprehensive API | REST API with SSE event streaming and a React web UI. Run workflows programmatically or as a service |
| 🦀 | Single binary, no runtime | One compiled Rust executable with zero dependencies. No Python, no Node, no Docker required |
| ⚖️ | Open source (MIT) | Full source code, no vendor lock-in. Self-host, fork, or extend to fit your workflow |
Example Workflow
A plan-approve-implement workflow where a human reviews the plan before the agent writes code:
digraph PlanImplement {
graph [
goal="Plan, approve, implement, and simplify a change"
model_stylesheet="
* { model: claude-haiku-4-5; reasoning_effort: low; }
.coding { model: claude-sonnet-4-5; reasoning_effort: high; }
"
]
start [shape=Mdiamond, label="Start"]
exit [shape=Msquare, label="Exit"]
plan [label="Plan", prompt="Analyze the goal and codebase. Write a step-by-step plan.", reasoning_effort="high"]
approve [shape=hexagon, label="Approve Plan"]
implement [label="Implement", class="coding", prompt="Read plan.md and implement every step."]
simplify [label="Simplify", class="coding", prompt="Review the changes for clarity and correctness."]
start -> plan -> approve
approve -> implement [label="[A] Approve"]
approve -> plan [label="[R] Revise"]
implement -> simplify -> exit
}
Agents run as multi-turn LLM sessions with tool access. Human gates (hexagon) pause for approval. The stylesheet routes planning to a cheap model and coding to a frontier model. See the Graphviz DOT language reference for the full syntax.
📖 Documentation
Fabro ships with comprehensive documentation covering every feature in depth:
- Getting Started -- Installation, first workflow, and why Fabro exists
- Defining Workflows -- Node types, transitions, variables, stylesheets, and human gates
- Executing Workflows -- Run configuration, sandboxes, checkpoints, observability, and failure handling
- Tutorials -- Step-by-step guides from hello world to parallel multi-model ensembles
- API Reference -- Full OpenAPI spec with authentication, SSE events, and client SDKs
Quick Start
Install
# With Claude Code
curl -fsSL https://fabro.sh/install.md | claude
# With Codex
codex "$(curl -fsSL https://fabro.sh/install.md)"
# With Homebrew
brew install fabro-sh/tap/fabro-nightly
# With Bash
curl -fsSL https://fabro.sh/install.sh | bash
Release binaries and the multi-arch Docker image ship with SLSA Build Provenance attestations. See Verifying Releases to check an artifact was built by our GitHub Actions workflow.
Then finish setup in your browser and initialize Fabro in your project:
fabro server start # opens a web install wizard in your browser
# (server exits when the wizard finishes — start it again to run Fabro)
cd my-project
fabro repo init # per project
For headless or scripted environments, fabro install runs the same setup as a CLI-only wizard.
Running Fabro
Fabro runs as a server. You choose where it runs:
- On your laptop — install the CLI (above) and run
fabro server start. Workflows pause when your laptop sleeps. - On a host (self-hosted) — deploy the Docker image with
docker composeor any cloud container service (ECS, Cloud Run, Kubernetes). See Self-host with Docker.
One-click managed alternative for the same Docker image:
See the deployment overview for the full picture.
Contributing to Fabro
Outside contributions are welcome! Whether it's a bug fix, a new feature, documentation, or a typo -- we'd love your help making Fabro better.
- Bug fixes and small improvements -- Send a pull request directly.
- Larger features or changes -- Open a GitHub Issue or start a Discussion first so we can align on the approach.
- Questions -- Open a Discussion or email bryan@qlty.sh.
See CONTRIBUTING.md for build instructions and development workflow.
Help or Feedback
- Bug reports via GitHub Issues
- Feature requests via GitHub Discussions
- Email bryan@qlty.sh for questions
- See CONTRIBUTING.md for build instructions and development workflow
License
Fabro is licensed under the MIT License.