Goal-Embedded Dual Hierarchical Model for Task-Oriented Dialogue Generation

September 19, 2019 ยท Declared Dead ยท ๐Ÿ› Conference on Computational Natural Language Learning

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Authors Yi-An Lai, Arshit Gupta, Yi Zhang arXiv ID 1909.09220 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 1 Venue Conference on Computational Natural Language Learning Last Checked 6 months ago
Abstract
Hierarchical neural networks are often used to model inherent structures within dialogues. For goal-oriented dialogues, these models miss a mechanism adhering to the goals and neglect the distinct conversational patterns between two interlocutors. In this work, we propose Goal-Embedded Dual Hierarchical Attentional Encoder-Decoder (G-DuHA) able to center around goals and capture interlocutor-level disparity while modeling goal-oriented dialogues. Experiments on dialogue generation, response generation, and human evaluations demonstrate that the proposed model successfully generates higher-quality, more diverse and goal-centric dialogues. Moreover, we apply data augmentation via goal-oriented dialogue generation for task-oriented dialog systems with better performance achieved.
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