Template Guided Text Generation for Task-Oriented Dialogue
Mihir Kale, Abhinav Rastogi
Abstract
Virtual assistants such as Google Assistant, Amazon Alexa, and Apple Siri enable users to interact with a large number of services and APIs on the web using natural language. In this work, we investigate two methods for Natural Language Generation (NLG) using a single domain-independent model across a large number of APIs. First, we propose a schemaguided approach which conditions the generation on a schema describing the API in natural language. Our second method investigates the use of a small number of templates, growing linearly in number of slots, to convey the semantics of the API. To generate utterances for an arbitrary slot combination, a few simple templates are first concatenated to give a semantically correct, but possibly incoherent and ungrammatical utterance. A pre-trained language model is subsequently employed to rewrite it into coherent, natural sounding text. Through automatic metrics and human evaluation, we show that our method improves over strong baselines, is robust to out-of-domain inputs and shows improved sample efficiency. 1
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Cited by top-tier papers13
- CINS: Comprehensive Instruction for Few-Shot Learning in Task-Oriented Dialog SystemsFei Mi, Yasheng Wang, Yitong LiAAAI 2022 · 46 citations
- Label Semantic Aware Pre-training for Few-shot Text ClassificationAaron Mueller, Jason Krone, Salvatore Romeo, Saab Mansour et al.ACL 2022 · 41 citations
- Improving Compositional Generalization with Self-Training for Data-to-Text GenerationSanket Vaibhav Mehta, Jinfeng Rao, Yi Tay, Mihir Kale et al.ACL 2022 · 34 citations
- How Do Seq2Seq Models Perform on End-to-End Data-to-Text Generation?Xunjian Yin, Xiaojun WanACL 2022 · 23 citations
- Self-training Improves Pre-training for Few-shot Learning in Task-oriented Dialog SystemsFei Mi, Wanhao Zhou, Lingjing Kong, Fengyu Cai et al.EMNLP 2021 · 18 citations
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