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Orchestrates end-to-end autonomous AI research projects using a two-loop architecture. The inner loop runs rapid experiment iterations with clear optimization targets. The outer loop synthesizes results, identifies patterns, and steers research direction. Routes to domain-specific skills for execution, supports continuous agent operation via Claude Code /loop and OpenClaw heartbeat, and produces research presentations and papers. Use when starting a research project, running autonomous experiments, or managing a multi-hypothesis research effort.

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Source facts

Repository
brycewang-stanford/Auto-Empirical-Research-Skills
Last source activity
July 15, 2026 at 17:47
Detected SKILL.md language
English
Stars
3,291
Forks
432

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