BioDyad: Synchronize Biomedical Discovery and Machine Learning Engineering
arXiv cs.AIen
arXiv cs.AI
AI Global WirearXiv:2609.31939v1 Announce Type: new Abstract: Agentic biomedical machine learning (ML) draws on complementary advances in biomedical evidence acquisition and executable program search. Existing systems connect aspects of these capabilities, but coordinating them throughout program search remains challenging. New evidence must guide candidate construction, execution outcomes must inform subsequent discovery and reuse, and validation demands must fit the search budget. We introduce BioDyad, which couples biomedical discovery and ML engineering through two hierarchies within Monte Carlo graph search. Its scientific hierarchy combines prior biomedical guidance with iterative discovery, then li
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