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View original post on X: Rohan PaulX· 59/100AI score59/100

Meta's GitSwarm lets AI agents build on shared Git history, failures included

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Meta researchers present GitSwarm, a system where many identical agents work on a shared Git repo without a central coordinator. Each agent reads earlier commits, including failed attempts, and records which ones it used. On 50 ProgramBench tasks, GitSwarm reaches a 79.4% mean score, versus 65.1% for a single Codex agent at similar compute.

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Rohan PaulVerified on X
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New Meta paper shows that AI agents can build on each other's work, even failed attempts, when every step lives in a shared Git repo.

Most ways to give agents more compute treat each run on its own. When a run ends, its partial results and failures vanish, so later runs may need to rediscover them.

GitSwarm runs many identical agents on a shared repo, with no boss assigning tasks. Each agent reads past work, picks what to try, and commits its result with a list of earlier commits it used, even from other branches.

On 50 program-rebuilding tasks from ProgramBench, GitSwarm scored 79.4%, while a single Codex agent told to keep working peaked at 65.1% at similar compute. Later agents built on 94.7% of saved contributions.

Instead of pushing a single agent to keep going, run several over a shared Git history that keeps every attempt, failures included.

Source: Rohan Paul · x.comPublished · added here