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Y. Wu

ورقتان في مجموعة PaperMetrix

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  1. MeTHanol: Modularized Thinking Language Models with Intermediate Layer Thinking, Decoding and Bootstrapping Reasoning

    2024 · arXiv (Cornell University)

    Current research efforts are focused on enhancing the thinking and reasoning capability of large language model (LLM) by prompting, data-driven emergence and inference-time computation. In this study, we consider stimulating language model's thinking and cognitive …

  2. CodeARC: Benchmarking Reasoning Capabilities of LLM Agents for Inductive Program Synthesis

    2025 · arXiv (Cornell University)

    Inductive program synthesis, or programming by example, requires synthesizing functions from input-output examples that generalize to unseen inputs. While large language model agents have shown promise in programming tasks guided by natural language, their ability …