Convolutional End-to-End Memory Networks for Multi-Hop Reasoning

被引:3
|
作者
Yang, Xiaoqing [1 ]
Fan, Pingzhi [1 ]
机构
[1] Southwest Jiaotong Univ, Sch Informat Sci & Technol, Chengdu 611756, Peoples R China
来源
IEEE ACCESS | 2019年 / 7卷
关键词
Task analysis; Cognition; Computer architecture; Logic gates; Computational modeling; Numerical models; Natural languages; End-to-end memory networks; convolutional network; natural language reasoning;
D O I
10.1109/ACCESS.2019.2940707
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Machine reading and comprehension using differentiable reasoning models has recently been studied extensively, and memory networks have demonstrated promising performance on some reasoning tasks such as factual reasoning and basic deduction. However, as a natural language understanding model, memory networks still face challenges on the numeric representations for sentences, particularly the text representation method and the effectiveness of learned vector representations. In this paper, inspired by the convolution mechanism in the computer vision domain, a raw text representation architecture for question answering problem named convolutional end-to-end memory networks(CMemN2N) architecture is proposed. The convolutional architecture of the proposed model allows us to abstract the useful local information for reasoning to get the significant numeric sentence representation passed to the follow-up sub-tasks. Our experiments show that CMemN2N achieves better results on most of the 20 bAbI task dataset, yielding improvements for the average result compared to the state-of-the-art.
引用
收藏
页码:135268 / 135276
页数:9
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