Papers with domain and task adaptation

    1 papers
    LaMDAgent: An Autonomous Framework for Post-Training Pipeline Optimization via LLM Agents (2025.emnlp-main)

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    Challenge: Existing approaches to optimize large language models rely on manual design or focus on optimizing individual components.
    Approach: They propose a LaMDAgent framework that constructs and optimizes end-to-end post-training pipelines by exploring various model improving methods, objects, and their applied orderings based on task-based feedback.
    Outcome: The proposed framework achieves a 9.0-point gain in tool-use accuracy without degrading instruction-following, and reduces computational costs.

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