Slot-consistent NLG for Task-oriented Dialogue Systems with Iterative Rectification Network
Yangming Li, Kaisheng Yao, Libo Qin, Wanxiang Che, Xiaolong Li, Ting Liu
摘要
Data-driven approaches using neural networks have achieved promising performances in natural language generation (NLG). However, neural generators are prone to make mistakes, e.g., neglecting an input slot value and generating a redundant slot value. Prior works refer this to hallucination phenomenon. In this paper, we study slot consistency for building reliable NLG systems with all slot values of input dialogue act (DA) properly generated in output sentences. We propose Iterative Rectification Network (IRN) for improving general NLG systems to produce both correct and fluent responses. It applies a bootstrapping algorithm to sample training candidates and uses reinforcement learning to incorporate discrete reward related to slot inconsistency into training. Comprehensive studies have been conducted on multiple benchmark datasets, showing that the proposed methods have significantly reduced the slot error rate (ERR) for all strong baselines. Human evaluations also have confirmed its effectiveness.
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- End-to-end Task-oriented Dialogue: A Survey of Tasks, Methods, and Future DirectionsLibo Qin, Wenbo Pan, Qiguang Chen, Lizi Liao 等EMNLP 2023 · 被引用 12 次
- Don't be Contradicted with Anything! CI-ToD: Towards Benchmarking Consistency for Task-oriented Dialogue SystemLibo Qin, Tianbao Xie, Shijue Huang, Qiguang Chen 等EMNLP 2021 · 被引用 9 次
- Towards Complex Scenarios: Building End-to-End Task-Oriented Dialogue System across Multiple Knowledge BasesLibo Qin, Zhouyang Li, Qiying Yu, Lehan Wang 等AAAI 2023 · 被引用 6 次
- Interpretable NLG for Task-oriented Dialogue Systems with Heterogeneous Rendering MachinesYangming Li, Kaisheng YaoAAAI 2021 · 被引用 4 次
- Enhancing Task-oriented Dialogue Systems with Generative Post-processing NetworksAtsumoto Ohashi, Ryuichiro HigashinakaEMNLP 2023
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