Autoresearch

Yeachan-Heo/oh-my-claudecode/skills/autoresearch

by Yeachan-Heo454bae017356ed1d056182cd929b6eb6cf6143adNo licenseListed Oct 9, 2026Updated Oct 9, 2026

Stateful single-mission improvement loop with strict evaluator contract, markdown decision logs, and max-runtime stop behavior

Instructions onlyAI & Agents
AI-generated overview

Runs a bounded, evaluator-driven improvement loop for a single mission, logging each iteration until a stop condition.

What it does
Autoresearch is a stateful skill that owns one mission at a time and iterates through experiment-and-evaluation cycles. Each iteration runs the evaluator, persists machine-readable evaluation JSON, and appends a human-readable markdown decision log under a mission directory. It keeps going through non-passing results and stops only at an explicit max-runtime ceiling, user cancellation, or another recorded terminal condition.
When to use it
Use it when a mission and evaluator already exist and you want persistent single-mission improvement with strict evaluation. It fits cases needing durable experiment logs and optional periodic reruns via native cron. It is not for generating an evaluator at runtime or orchestrating multiple missions.
Requirements
Requires an existing mission and evaluator from a prior deep-interview --autoresearch step, plus a writable mission directory for artifacts. Evaluator output must be structured JSON with a boolean pass field. No scripts ship with the skill; it is instructions only.

<Purpose>

Autoresearch is a stateful skill for bounded, evaluator-driven iterative improvement. It owns one mission at a time, keeps iterating through non-passing results, records each evaluation and decision as durable artifacts, and stops only when an explicit max-runtime ceiling or another explicit terminal condition is reached.

</Purpose>

<Use_When>

  • You already have a mission and evaluator from /deep-interview --autoresearch
  • You want persistent single-mission improvement with strict evaluation
  • You need durable experiment logs under .omc/autoresearch/
  • You want a supported path for periodic reruns via Claude Code native cron

</Use_When>

<Do_Not_Use_When>

  • You need evaluator generation at runtime — use /deep-interview --autoresearch first
  • You need multiple missions orchestrated together — v1 forbids that
  • You want the deprecated omc autoresearch CLI flow — it is no longer authoritative

</Do_Not_Use_When>

<Contract>

  • Single-mission only in v1
  • Mission setup/evaluator generation stays in deep-interview --autoresearch
  • Evaluator output must be structured JSON with required boolean pass and optional numeric score
  • Non-passing iterations do not stop the run
  • Stop conditions are explicit and bounded, with max-runtime as the primary strict stop hook

</Contract>

<Required_Artifacts>

Canonical persistent storage lives under .omc/autoresearch/<mission-slug>/ and/or .omc/logs/autoresearch/<run-id>/.

Minimum required artifacts:

  • mission spec
  • evaluator script or command reference
  • per-iteration evaluation JSON
  • markdown decision logs

Recommended canonical shape:

text
.omc/autoresearch/<mission-slug>/  mission.md  evaluator.json  runs/<run-id>/    evaluations/      iteration-0001.json      iteration-0002.json    decision-log.md

Reuse existing runtime artifacts when available rather than duplicating them unnecessarily.

</Required_Artifacts>

<Workflow>

  1. Confirm a single mission exists and evaluator setup is already available.
  2. Ensure mode/state is active for autoresearch and records:
    • mission slug/dir
    • evaluator reference
    • iteration count
    • started/updated timestamps
    • explicit max-runtime or deadline
  3. On every iteration:
    • run exactly one experiment/change cycle
    • run the evaluator
    • persist machine-readable evaluation JSON
    • append a human-readable markdown decision log entry
    • continue even when evaluation does not pass
  4. Stop when:
    • max-runtime ceiling is reached
    • user explicitly cancels
    • another explicit terminal condition is recorded by the runtime

</Workflow>

<Cron_Integration>

Claude Code native cron is a supported integration point for periodic mission enhancement. In v1, prefer documenting/configuring cron inputs over building a large scheduler UI.

If cron is used:

  • keep one mission per scheduled job
  • preserve the same mission/evaluator contract
  • append new run artifacts rather than overwriting prior experiments

</Cron_Integration>

<Execution_Policy>

  • Do not hand execution back to omc autoresearch
  • Do not create multi-mission orchestration
  • Prefer reusing src/autoresearch/* runtime/schema helpers where they already match the stricter contract
  • Keep logs useful to humans, not only machines

</Execution_Policy>

Source and attribution

Source:Yeachan-Heo/oh-my-claudecodeinskills/autoresearchat commit454bae0

License: No license

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