fabro/lib/components/fabro-workflow
Bryan Helmkamp 3f721dd032
Consume the sandbox driver's events directly in the workflow
Fabro-sandbox carried its own SandboxEvent enum and a callback for it.
The run sandbox wrapped every lifecycle call to emit a start, completed,
or failed variant with its own clock, and re-described the driver's
create-time progress as snapshot events through an observer that lived
next to the run sandbox. The workflow then converted that enum to the
wire. The driver already reports every operation it performs, so the
enum was a second, hand-maintained copy of that stream.

The workflow now observes the driver's events directly. A run's sandbox
is created or attached with a driver EventContext whose observer is the
new SandboxEventBridge in the workflow's event module. The bridge turns
the driver's start, stop, and delete operations, its image pull inside a
create, and its snapshot builds into the workflow's SandboxLifecycle
events, stamping fabro's provider name so the run keeps recording
`local` rather than the driver's `host`. The pipeline emits the
initializing, ready, and failed events itself around bringing the sandbox
up, since that composite step — create, activate, prepare the workspace
— is the pipeline's, not the driver's. Fabro-sandbox emits no events of
its own any more; the run sandbox gained console_url for the ready
event, and a local sandbox can be created with an event context.

The wire keeps every name the CLI reads. Two families go: the cleanup
events, which only the server's manifest validation could have produced
and it passed no callback, and the git clone events, which nothing read
and whose facts the sandbox.initialized event and tracing already carry.
The ready event drops the cpu and memory fields no provider ever
populated. Daytona snapshot events now come from the driver's ensure
call, so a snapshot that already exists and is active reports nothing
rather than a creating-and-ready pair that did no work.

Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
2026-09-10 00:37:42 -06:00
..
src Consume the sandbox driver's events directly in the workflow 2026-09-10 00:37:42 -06:00
tests Retire the fabro Sandbox trait for one concrete RunSandbox 2026-09-10 00:14:42 -06:00
Cargo.toml Consume the sandbox driver's events directly in the workflow 2026-09-10 00:37:42 -06:00
README.md fix(workflow): make publish failures terminal 2026-07-27 11:25:18 -04:00

fabro-workflow

A DOT-based pipeline runner for multi-stage AI workflows. Define workflows as Graphviz digraph files and execute them with pluggable handlers, conditional routing, human-in-the-loop gates, parallel branching, retry policies, and checkpoint-based recovery.

Key Concepts

  • Graph -- A directed graph parsed from DOT syntax containing nodes, edges, and attributes. The graph carries a goal describing the pipeline's purpose.
  • Node -- A workflow step. Graphviz shapes map to handler types (e.g., Mdiamond = start, Msquare = exit, box = agent, tab = prompt, diamond = conditional, hexagon = human gate, component = parallel).
  • Edge -- A connection between nodes with optional condition, label, weight, and fidelity attributes that control routing.
  • Handler -- An async trait implementation that executes a node and returns an Outcome. Built-in handlers include StartHandler, ExitHandler, AgentHandler, PromptHandler, ConditionalHandler, HumanHandler, ParallelHandler, FanInHandler, CommandHandler, and SubWorkflowHandler.
  • Outcome -- The result of executing a handler, carrying a StageOutcome (Success, Fail, PartialSuccess, Retry, Skipped), optional routing hints (preferred_label, suggested_next_ids), and context updates.
  • Context -- A thread-safe key-value store shared across pipeline stages, supporting snapshots and isolated cloning for parallel branches.
  • Interviewer -- A trait for human-in-the-loop interactions. Implementations include AutoApproveInterviewer, QueueInterviewer, CallbackInterviewer, ConsoleInterviewer, and RecordingInterviewer.
  • Checkpoint -- A serializable snapshot of execution state (completed nodes, context values) for crash recovery and resume.

Pipeline Definition

Pipelines are defined using Graphviz DOT syntax:

digraph MyPipeline {
    graph [goal="Implement and validate a feature"]
    rankdir=LR
    node [shape=box, timeout="900s"]

    start     [shape=Mdiamond, label="Start"]
    exit      [shape=Msquare, label="Exit"]
    plan      [label="Plan", prompt="Plan the implementation"]
    implement [label="Implement", prompt="Implement the plan"]
    validate  [label="Validate", prompt="Run tests"]
    gate      [shape=diamond, label="Tests passing?"]

    start -> plan -> implement -> validate -> gate
    gate -> exit      [label="Yes", condition="outcome=succeeded"]
    gate -> implement [label="No", condition="outcome!=succeeded"]
}

Usage

Parsing and Validating a Pipeline

use fabro_workflow::operations::{create, CreateOptions};

let dot_source = r#"digraph Simple {
    graph [goal="Run tests"]
    start [shape=Mdiamond]
    exit  [shape=Msquare]
    work  [shape=box, prompt="Run the test suite"]
    start -> work -> exit
}"#;

let validated = create(dot_source, CreateOptions::default())
    .expect("pipeline should parse");
validated.raise_on_errors().expect("pipeline should validate");
let (graph, _, _) = validated.into_parts();
assert_eq!(graph.name, "Simple");
assert_eq!(graph.goal(), "Run tests");

operations::create parses the DOT source, applies built-in transforms (variable expansion, stylesheet application, preamble injection), and returns diagnostics through Validated.

Running a Pipeline

use fabro_workflow::operations::start;
use fabro_workflow::pipeline;

// Use `operations::start(...)` for the full
// initialize -> execute -> conclude -> publish -> finalize flow.
// Use `pipeline::initialize(...)` + `pipeline::execute(...)` when you need partial lifecycle control.

Custom Handlers

Implement the Handler trait to add custom node behavior:

use arc_workflows::handler::Handler;
use arc_workflows::context::Context;
use arc_workflows::graph::{Graph, Node};
use arc_workflows::outcome::Outcome;
use arc_workflows::error::ArcError;
use async_trait::async_trait;
use std::path::Path;

struct MyHandler;

#[async_trait]
impl Handler for MyHandler {
    async fn execute(
        &self,
        node: &Node,
        context: &Context,
        graph: &Graph,
        run_dir: &Path,
    ) -> Result<Outcome, ArcError> {
        // Custom logic here
        Ok(Outcome::success())
    }
}

Model Stylesheets

CSS-like stylesheets control LLM model assignment with specificity-based cascading:

digraph Styled {
    graph [
        goal="Build feature",
        model_stylesheet="
            * { model: claude-sonnet-4-5;}
            .code { model: claude-opus-4-6; }
            #critical_review { model: gpt-5.2;}
        "
    ]
    // ...
}

Selectors by specificity: * (universal, 0) < shape (1) < .class (2) < #id (3). Explicit node attributes are never overridden.

Condition Expressions

Edge conditions use a simple expression syntax for routing:

outcome=succeeded
outcome!=failed
outcome=succeeded && context.tests_passed=true
my_flag

Clauses support =, !=, and bare key truthiness checks, joined with &&.

Human-in-the-Loop Gates

Nodes with shape=hexagon or type="human" pause execution for human input. Outgoing edge labels become selectable options, with accelerator key parsing for patterns like [A] Approve and F) Fix.

Parallel Execution

Nodes with shape=component fan out to branches concurrently. Branches receive isolated context forks, share the same sandbox checkout, and always finish before the workflow continues. Use max_parallel to limit concurrency; concurrent workspace writes are user-managed.

Checkpoints and Resume

The engine saves a checkpoint after each node. Resume from a checkpoint with engine.run_from_checkpoint(&graph, &config, &checkpoint).

Architecture

parser (DOT -> AST -> Graph)
  -> transform (variable expansion, stylesheet, preamble)
    -> validation (14 lint rules)
      -> engine (execution loop with retry, edge selection, goal gates)
        -> handler (pluggable node executors)
          -> interviewer (human-in-the-loop I/O)