Chinese Short Text Classification with Mutual-Attention Convolutional Neural Networks

Author:

Hao Ming1,Xu Bo2,Liang Jing-Yi3,Zhang Bo-Wen4,Yin Xu-Cheng5

Affiliation:

1. University of Science and Technology Beijing, Beijing Shi, China

2. Institute of Automation, Chinese Academy of Sciences, Beijing, China

3. China University of Geosciences, Wuhan, Wuhan Shi, Hubei, China

4. Alibaba Group, Hangzhou Shi, Zhejiang, China

5. University of Science and Technology Beijing, Haidian Qu, Beijing Shi, China

Abstract

The methods based on the combination of word-level and character-level features can effectively boost performance on Chinese short text classification. A lot of works concatenate two-level features with little processing, which leads to losing feature information. In this work, we propose a novel framework called Mutual-Attention Convolutional Neural Networks, which integrates word and character-level features without losing too much feature information. We first generate two matrices with aligned information of two-level features by multiplying word and character features with a trainable matrix. Then, we stack them as a three-dimensional tensor. Finally, we generate the integrated features using a convolutional neural network. Extensive experiments on six public datasets demonstrate improved performance of our new framework over current methods.

Funder

Xucheng Yin

the Beijing University of Science and Technology Innovation Talents Fund Project

Publisher

Association for Computing Machinery (ACM)

Subject

General Computer Science

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