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20222025
most citedUnify Graph Learning with Text: Unleashing LLM Potentials for Session Search

6 citations · 12 across the 7 of their papers we have counts for

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11 papers · 1 filter

cs.CL2025

Exploring the Inquiry-Diagnosis Relationship with Advanced Patient Simulators

Zhaocheng Liu, Quan Tu, Wen Ye +7

Recently, large language models have shown great potential to transform online medical consultation. Despite this, most research targets improving diagnostic accuracy with ample in…

cs.CL2024

StyleChat: Learning Recitation-Augmented Memory in LLMs for Stylized Dialogue Generation

Jinpeng Li, Zekai Zhang, Quan Tu +3

Large Language Models (LLMs) demonstrate superior performance in generative scenarios and have attracted widespread attention. Among them, stylized dialogue generation is essential…

cs.CL2024

StreamingDialogue: Prolonged Dialogue Learning via Long Context Compression with Minimal Losses

Jia-Nan Li, Quan Tu, Cunli Mao +3

Standard Large Language Models (LLMs) struggle with handling dialogues with long contexts due to efficiency and consistency issues. According to our observation, dialogue contexts…

cs.CL2024

"In Dialogues We Learn": Towards Personalized Dialogue Without Pre-defined Profiles through In-Dialogue Learning

Chuanqi Cheng, Quan Tu, Shuo Shang +4

Personalized dialogue systems have gained significant attention in recent years for their ability to generate responses in alignment with different personas. However, most existing…

cs.CL2024

CharacterEval: A Chinese Benchmark for Role-Playing Conversational Agent Evaluation

Quan Tu, Shilong Fan, Zihang Tian +1

Recently, the advent of large language models (LLMs) has revolutionized generative agents. Among them, Role-Playing Conversational Agents (RPCAs) attract considerable attention due…

cs.CL2023

An Analysis and Mitigation of the Reversal Curse

Ang Lv, Kaiyi Zhang, Shufang Xie +4

Recent research observed a noteworthy phenomenon in large language models (LLMs), referred to as the ``reversal curse.'' The reversal curse is that when dealing with two entities,…