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Interactive Matching Network for Multi-Turn Response Selection in Retrieval-Based Chatbots

Authors :
Gu, Jia-Chen
Ling, Zhen-Hua
Liu, Quan
Gu, Jia-Chen
Ling, Zhen-Hua
Liu, Quan
Publication Year :
2019

Abstract

In this paper, we propose an interactive matching network (IMN) for the multi-turn response selection task. First, IMN constructs word representations from three aspects to address the challenge of out-of-vocabulary (OOV) words. Second, an attentive hierarchical recurrent encoder (AHRE), which is capable of encoding sentences hierarchically and generating more descriptive representations by aggregating with an attention mechanism, is designed. Finally, the bidirectional interactions between whole multi-turn contexts and response candidates are calculated to derive the matching information between them. Experiments on four public datasets show that IMN outperforms the baseline models on all metrics, achieving a new state-of-the-art performance and demonstrating compatibility across domains for multi-turn response selection.<br />Comment: Accepted by CIKM 2019

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1106326082
Document Type :
Electronic Resource