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A Document-grounded Matching Network for Response Selection in Retrieval-based Chatbots

Authors :
Zhao, Xueliang
Tao, Chongyang
Wu, Wei
Xu, Can
Zhao, Dongyan
Yan, Rui
Source :
IJCAI 2019
Publication Year :
2019

Abstract

We present a document-grounded matching network (DGMN) for response selection that can power a knowledge-aware retrieval-based chatbot system. The challenges of building such a model lie in how to ground conversation contexts with background documents and how to recognize important information in the documents for matching. To overcome the challenges, DGMN fuses information in a document and a context into representations of each other, and dynamically determines if grounding is necessary and importance of different parts of the document and the context through hierarchical interaction with a response at the matching step. Empirical studies on two public data sets indicate that DGMN can significantly improve upon state-of-the-art methods and at the same time enjoys good interpretability.

Details

Database :
arXiv
Journal :
IJCAI 2019
Publication Type :
Report
Accession number :
edsarx.1906.04362
Document Type :
Working Paper