Towards Multi-Intent Spoken Language Understanding via Hierarchical Attention and Optimal Transport
Xuxin Cheng, Zhihong Zhu, Hongxiang Li, Yaowei Li, Xianwei Zhuang, Yuexian Zou
摘要
Spoken language understanding (SLU) is a core task in task-oriented dialogue systems, which aims at understanding user's current goal through constructing semantic frames. SLU usually consists of two subtasks, including intent detection and slot filling. Although there are some SLU frameworks joint modeling the two subtasks and achieve the high performance, most of them still overlook the inherent relationships between intents and slots, and fail to achieve mutual guidance between the two subtasks. To solve the problem, we propose a multi-level multi-grained SLU framework MMCL to apply contrastive learning at three levels, including utterance level, slot level, and word level to enable intent and slot to mutually guide each other. For the utterance level, our framework implements coarse granularity contrastive learning and fine granularity contrastive learning simultaneously. Besides, we also apply the self-distillation method to improve the robustness of the model. Experimental results and further analysis demonstrate that our proposed model achieves new state-of-the-art results on two public multi-intent SLU datasets, obtaining a 2.6 overall accuracy improvement on MixATIS dataset compared to previous best models. CCS CONCEPTS • Computing methodologies → Natural language processing; Discourse, dialogue and pragmatics.
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引用它的顶会 Paper13
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它引用的顶会 Paper6
- Co-guiding Net: Achieving Mutual Guidances between Multiple Intent Detection and Slot Filling via Heterogeneous Semantics-Label GraphsBowen Xing, Ivor W. TsangEMNLP 2022 · 被引用 36 次
- GL-CLeF: A Global-Local Contrastive Learning Framework for Cross-lingual Spoken Language UnderstandingLibo Qin, Qiguang Chen, Tianbao Xie, Qixin Li 等ACL 2022 · 被引用 36 次
- Enhancing Joint Multiple Intent Detection and Slot Filling with Global Intent-Slot Co-occurrenceMengxiao Song, Bowen Yu, Quangang Li, Yubin Wang 等EMNLP 2022 · 被引用 28 次
- Group is better than individual: Exploiting Label Topologies and Label Relations for Joint Multiple Intent Detection and Slot FillingBowen Xing, Ivor W. TsangEMNLP 2022 · 被引用 24 次
- A Scope Sensitive and Result Attentive Model for Multi-Intent Spoken Language UnderstandingLizhi Cheng, Wenmian Yang, Weijia JiaAAAI 2023 · 被引用 18 次
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