Personalized Dialogue Generation with Persona-Adaptive Attention
Qiushi Huang, Yu Zhang, Tom Ko, Xubo Liu, Bo Wu, Wenwu Wang, H. Lilian Tang
Abstract
Persona-based dialogue systems aim to generate consistent responses based on historical context and predefined persona. Unlike conventional dialogue generation, the persona-based dialogue needs to consider both dialogue context and persona, posing a challenge for coherent training. Specifically, this requires a delicate weight balance between context and persona. To achieve that, in this paper, we propose an effective framework with Persona-Adaptive Attention (PAA), which adaptively integrates the weights from the persona and context information via our designed attention. In addition, a dynamic masking mechanism is applied to the PAA to not only drop redundant information in context and persona but also serve as a regularization mechanism to avoid overfitting. Experimental results demonstrate the superiority of the proposed PAA framework compared to the strong baselines in both automatic and human evaluation. Moreover, the proposed PAA approach can perform equivalently well in a lowresource regime compared to models trained in a full-data setting, which achieve a similar result with only 20% to 30% of data compared to the larger models trained in the full-data setting. To fully exploit the effectiveness of our design, we designed several variants for handling the weighted information in different ways, showing the necessity and sufficiency of our weighting and masking designs. ‡
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Install the CLIlune papers fulltext e74ec150-9e42-4615-9c51-e59eb21c492cCited by top-tier papers7
- Learning Retrieval Augmentation for Personalized Dialogue GenerationQiushi Huang, Shuai Fu, Xubo Liu, Wenwu Wang et al.EMNLP 2023 · 13 citations
- DMT-RoleBench: A Dynamic Multi-Turn Dialogue Based Benchmark for Role-Playing Evaluation of Large Language Model and AgentDingbo Yuan, Yipeng Chen, Guodong Liu, Chenchen Li et al.AAAI 2025 · 6 citations
- "In-Dialogues We Learn": Towards Personalized Dialogue Without Pre-defined Profiles through In-Dialogue LearningChuanqi Cheng, Quan Tu, Wei Wu, Shuo Shang et al.EMNLP 2024 · 3 citations
- PANDA: Persona Attributes Navigation for Detecting and Alleviating Overuse Problem in Large Language ModelsJinsung Kim, Seonmin Koo, Heuiseok LimEMNLP 2024 · 2 citations
- GateRA: Token-aware Modulation for Parameter-Efficient Fine-tuningJie Ou, Shuaihong Jiang, Yingjun Du, Cees G. M. SnoekAAAI 2026
Builds on4
- Beyond Goldfish Memory: Long-Term Open-Domain ConversationJing Xu, Arthur Szlam, Jason WestonACL 2022 · 329 citations
- You Impress Me: Dialogue Generation via Mutual Persona PerceptionQian Liu, Yihong Chen, Bei Chen, Jian-Guang Lou et al.ACL 2020 · 144 citations
- BoB: BERT Over BERT for Training Persona-based Dialogue Models from Limited Personalized DataHaoyu Song, Yan Wang, Kaiyan Zhang, Wei-Nan Zhang et al.ACL 2021
- A Model-agnostic Data Manipulation Method for Persona-based Dialogue GenerationYu Cao, Wei Bi, Meng Fang, Shuming Shi et al.ACL 2022
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