Mechanical write gates, evidence receipts, and adversarial review for AI coding agents.
Copy the AI prompt to install this server into Claude Code, Cursor, or another agent β or use 1-click editor setup below.
One-click editor setup isnβt available for this listing yet β we donβt have a confirmed install command, and weβd rather show nothing than point your editor at the wrong package or host. Follow the projectβs own setup instructions, linked above.
Fable Mode is an open-source control plane for AI coding agents.
It makes an agent deliberate, produce evidence, and survive adversarial review before it earns permission to write to your workspace. The gates are mechanical, not prompt advice: no timer, no proof, no write access.
KERR // ORRERY
One self-contained HTML file. Raw WebGL, zero libraries, zero external assets, and zero build step.
https://github.com/user-attachments/assets/8287bbfe-e3ee-4dcf-ba0f-f9ff22ae79bd
7 renders rejected before final Β· 2 bugs caught Β· 10/10 red-team probes passed
Fable Mode overview
https://github.com/user-attachments/assets/27f4f8a2-b1bb-4398-a08c-bc9fd93d69d7
A session starts locked. Confidence does not unlock it.
A new session starts with execution locked:
The agent then records evidence and an invariant. An early unlock_execution
request is rejected until the authority timer and proof prerequisites pass.
Use get_status at any point to see the active phase, remaining time, evidence
counts, and lock state.
The same gates guard every phase: evidence receipts for claims, a five-vector red-team swarm for code, and a sealed record of what was verified.
Fable ships as one PyPI package. The same package contains the runtime, stdio MCP server, and complete Agent Skill. Setup is explicit so installing an MCP server never silently activates workspace instructions.
Run setup from the project the agent will work in:
This resolves the pinned package in an isolated uv environment and copies the
bundled skill to .agents/skills/fable-mode. Use --dry-run to preview or
--target <dir> for another skill directory. For a persistent install, use:
Then choose only the invocation that matches the agent environment.
Run fable-engine as the stdio server. For example:
The same package exposes a direct JSON transport. Pipe one fable_session
argument object to fable-mode call:
The command uses JSON Lines: one fable_session argument object per input line
and one JSON result per output line. Keep that process open for a full workflow so
the authority timer and session stay in the same trusted runtime. A one-line pipe
is useful for a single inspection call. Each uvx command can resolve an
isolated environment; pip install is better when the sandbox keeps a Python
environment between calls. Session data persists outside that environment in
Fable's data directory (FABLE_DATA_DIR can override it).
Python 3.10+, zero runtime dependencies. Published on PyPI as fable-engine.
setup is the unified path. The older install-skill command remains as a
compatible alias for skill-only installation. Neither fable-engine nor
pip install fable-engine writes instructions into a workspace on its own.
The evidence in a session is written by an AI agent, so Fable can optionally ask an external reviewer model to audit that evidence before the workspace unlocks. Stdlib-only, one bounded HTTPS call, no local model, no extra RAM to speak of. Off by default; fail-closed when enforcing. It raises the cost of fabricated proof - it cannot guarantee deception is impossible, and the mechanical gates stay the primary authority. Setup and honest limits: AI evidence adjudicator.
Issues and pull requests are welcome. See CONTRIBUTING.md.
MIT License Β· Built by REX
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