Papers by Jinjia Feng

    1 papers
    MotifAgent: Learning Molecular Assembly through Multi-Agent Collaboration for Chemical Language Understanding (2026.findings-acl)

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    Challenge: Existing approaches to molecular understanding are limited to static motif recognition without understanding connection rules governing how motifs assemble into valid topological structures.
    Approach: They propose a multi-agent reinforcement learning framework inspired by emergent collective intelligence to solve a problem where each motif is represented by an agent sharing a common LLM backbone.
    Outcome: Extensive experiments show that the proposed framework surpasses specialized expert models in molecular understanding tasks.

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