Dialog State Tracking with Reinforced Data Augmentation
Yichun Yin, Lifeng Shang, Xin Jiang, Xiao Chen, Qun Liu
摘要
Neural dialog state trackers are generally limited due to the lack of quantity and diversity of annotated training data. In this paper, we address this difficulty by proposing a reinforcement learning (RL) based framework for data augmentation that can generate high-quality data to improve the neural state tracker. Specifically, we introduce a novel contextual bandit generator to learn fine-grained augmentation policies that can generate new effective instances by choosing suitable replacements for specific context. Moreover, by alternately learning between the generator and the state tracker, we can keep refining the generative policies to generate more high-quality training data for neural state tracker. Experimental results on the WoZ and MultiWoZ (restaurant) datasets demonstrate that the proposed framework significantly improves the performance over the state-of-the-art models, especially with limited training data.
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引用它的顶会 Paper3
- Paraphrase Augmented Task-Oriented Dialog GenerationSilin Gao, Yichi Zhang, Zhijian Ou, Zhou YuACL 2020 · 被引用 78 次
- C2C-GenDA: Cluster-to-Cluster Generation for Data Augmentation of Slot FillingYutai Hou, Sanyuan Chen, Wanxiang Che, Cheng Chen 等AAAI 2021 · 被引用 20 次
- Variational Hierarchical Dialog Autoencoder for Dialog State Tracking Data AugmentationKang Min Yoo, Hanbit Lee, Franck Dernoncourt, Trung Bui 等EMNLP 2020
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