Papers with computationally lightweight framework

    1 papers
    ChemAmp: Amplified Chemistry Tools via Composable Agents (2026.findings-acl)

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    Challenge: LLM-based agents are powerful tools for automating complex scientific workflows, especially in chemistry, but their single-task performance is limited by tool constraints.
    Approach: They propose a framework that optimizes the collective capabilities of specialized tools by dynamic coordination within individual tasks.
    Outcome: The proposed framework outperforms chemistry-specialized models, generalist LLMs, and agent systems with tool orchestration.

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