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Yaxin FAN

16 accepted papers

2025

Enhancing Goal-oriented Proactive Dialogue Systems via Consistency Reflection and Correction

ACL 2025long

Goal-oriented proactive dialogue systems are designed to guide user conversations seamlessly towards specific objectives by planning a goal-oriented path. However, previous research has focused predominantly on optimizing these paths while neglecting the inconsistencies that may arise between genera…

2025

Enhancing Goal-oriented Proactive Dialogue Systems via Dynamic Multi-dimensional Consistency Optimization

EMNLP 2025

Previous work on goal-oriented proactive dialogue systems frequently failed to address the multi-dimensional consistency issue between generated responses and key contextual elements (e.g., user profile, dialogue history, domain knowledge, and subgoal). To address this issue, we propose a novel Dyna

2025

Enhancing Multi-party Dialogue Discourse Parsing with Explanation Generation

COLING 2025main

Multi-party dialogue discourse parsing is an important and challenging task in natural language processing (NLP). Previous studies struggled to fully understand the deep semantics of dialogues, especially when dealing with complex topic interleaving and ellipsis. To address the above issues, we prop…

2025

Improving Dialogue Discourse Parsing through Discourse-aware Utterance Clarification

ACL 2025long

Dialogue discourse parsing aims to identify and analyze discourse relations between the utterances within dialogues. However, linguistic features in dialogues, such as omission and idiom, frequently introduce ambiguities that obscure the intended discourse relations, posing significant challenges fo…

2025

Non-Emotion-Centric Empathetic Dialogue Generation

COLING 2025main

Previous work on empathetic response generation mainly focused on utilizing the speaker’s emotions to generate responses. However, the performance of identifying fine-grained emotions is limited, introducing cascading errors to empathetic response generation. Moreover, due to the conflict between th…

2025

SHARP: Unlocking Interactive Hallucination via Stance Transfer in Role-Playing LLMs

ACL 2025finding

The advanced role-playing capabilities of Large Language Models (LLMs) have enabled rich interactive scenarios, yet existing research in social interactions neglects hallucination while struggling with poor generalizability and implicit character fidelity judgments. To bridge this gap, motivated by…

Cited by 0SourcePDFScholar
2025

Simulating Dual-Process Thinking in Dialogue Topic Shift Detection

COLING 2025main

Previous work on dialogue topic shift detection has primarily focused on shallow local reasoning, overlooking the importance of considering the global historical structure and local details to elucidate the underlying causes of topic shift. To address the above two issues, we introduce the dual-proc…

2024

Improving Multi-party Dialogue Generation via Topic and Rhetorical Coherence

EMNLP 2024main

Previous studies on multi-party dialogue generation predominantly concentrated on modeling the reply-to structure of dialogue histories, always overlooking the coherence between generated responses and target utterances. To address this issue, we propose a Reinforcement Learning approach emphasizing…

2024

Incomplete Utterance Rewriting with Editing Operation Guidance and Utterance Augmentation

EMNLP 2024main

Although existing fashionable generation methods on Incomplete Utterance Rewriting (IUR) can generate coherent utterances, they often result in the inclusion of irrelevant and redundant tokens in rewritten utterances due to their inability to focus on critical tokens in dialogue context. Furthermore…

2024

PlatoLM: Teaching LLMs in Multi-Round Dialogue via a User Simulator

ACL 2024long

The unparalleled performance of closed-sourced ChatGPT has sparked efforts towards its democratization, with notable strides made by leveraging real user and ChatGPT dialogues, as evidenced by Vicuna. However, due to challenges in gathering dialogues involving human participation, current endeavors…

Cited by 5SourcePDFScholar
2024

Uncovering the Potential of ChatGPT for Discourse Analysis in Dialogue: An Empirical Study

COLING 2024main

Large language models, like ChatGPT, have shown remarkable capability in many downstream tasks, yet their ability to understand discourse structures of dialogues remains less explored, where it requires higher level capabilities of understanding and reasoning. In this paper, we aim to systematically…

2023

Improving Dialogue Discourse Parsing via Reply-to Structures of Addressee Recognition

EMNLP 2023long main

Dialogue discourse parsing aims to reflect the relation-based structure of dialogue by establishing discourse links according to discourse relations. To alleviate data sparsity, previous studies have adopted multitasking approaches to jointly learn dialogue discourse parsing with related tasks (e.g.…

Cited by 0SourcecodeScholar
2022

A Distance-Aware Multi-Task Framework for Conversational Discourse Parsing

COLING 2022main

Conversational discourse parsing aims to construct an implicit utterance dependency tree to reflect the turn-taking in a multi-party conversation. Existing works are generally divided into two lines: graph-based and transition-based paradigms, which perform well for short-distance and long-distance…

2021

Hierarchical Macro Discourse Parsing Based on Topic Segmentation

AAAI 2021technical

Hierarchically constructing micro (i.e., intra-sentence or inter-sentence) discourse structure trees using explicit boundaries (e.g., sentence and paragraph boundaries) has been proved to be an effective strategy. However, it is difficult to apply this strategy to document-level macro (i.e., inter-p…

2021

Not Just Classification: Recognizing Implicit Discourse Relation on Joint Modeling of Classification and Generation

EMNLP 2021main

Implicit discourse relation recognition (IDRR) is a critical task in discourse analysis. Previous studies only regard it as a classification task and lack an in-depth understanding of the semantics of different relations. Therefore, we first view IDRR as a generation task and further propose a metho…