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researcher

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Atualizado17 de julho de 2026 às 01:09

Autonomous measurement-driven optimization loop for performance, memory, latency, or binary-size work on real codebases. Generalizes the autoresearch pattern beyond ML into "anything you can build, run, and measure." Treats each change as a falsifiable hypothesis: commit before running, measure after, keep only what improves the primary metric, revert on discard. Use when the user wants to reduce memory/RSS/CPU/binary size, optimize a hot path, hit a latency target, or generally "make X faster/lighter" through iterative experimentation rather than a single rewrite. Triggers on "optimize", "reduce memory", "lower RSS", "make it lighter", "profile and improve", "research loop", "autoresearch", or when a measurable metric and a keep/discard discipline are needed. Do NOT use for bug diagnosis (use hypothesis-driven / systematic-debugging) or greenfield feature work.

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