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20242026
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cs.CL2026

Deep Search with Hierarchical Meta-Cognitive Monitoring Inspired by Cognitive Neuroscience

Zhongxiang Sun, Qipeng Wang, Weijie Yu +3

Deep search agents powered by large language models have demonstrated strong capabilities in multi-step retrieval, reasoning, and long-horizon task execution. However, their practi…

cs.CL2026

When Personalization Misleads: Understanding and Mitigating Hallucinations in Personalized LLMs

Zhongxiang Sun, Yi Zhan, Chenglei Shen +4

Personalized large language models (LLMs) adapt model behavior to individual users to enhance user satisfaction, yet personalization can inadvertently distort factual reasoning. We…

cs.CL2025

An Explicit Syllogistic Legal Reasoning Framework for Large Language Models

Kepu Zhang, Weijie Yu, Zhongxiang Sun +1

Syllogistic reasoning is crucial for sound legal decision-making, allowing legal professionals to draw logical conclusions by applying general principles to specific case facts. Wh…

cs.CL2025

Legal Mathematical Reasoning with LLMs: Procedural Alignment through Two-Stage Reinforcement Learning

Kepu Zhang, Guofu Xie, Weijie Yu +4

Legal mathematical reasoning is essential for applying large language models (LLMs) in high-stakes legal contexts, where outputs must be both mathematically accurate and procedural…

cs.CL2024

Beyond Guilt: Legal Judgment Prediction with Trichotomous Reasoning

Kepu Zhang, Haoyue Yang, Xu Tang +2

In legal practice, judges apply the trichotomous dogmatics of criminal law, sequentially assessing the elements of the offense, unlawfulness, and culpability to determine whether a…

cs.CL2024

CitaLaw: Enhancing LLM with Citations in Legal Domain

Kepu Zhang, Weijie Yu, Sunhao Dai +1

In this paper, we propose CitaLaw, the first benchmark designed to evaluate LLMs' ability to produce legally sound responses with appropriate citations. CitaLaw features a diverse…