An Entropy-Based Method with a New Benchmark Dataset for Chinese Textual Affective Structure Analysis

Author:

Xiong Shufeng1ORCID,Fan Xiaobo1ORCID,Batra Vishwash2ORCID,Zeng Yiming1,Zhang Guipei1,Xi Lei1,Liu Hebing1,Shi Lei1ORCID

Affiliation:

1. College of Information and Management Science, Henan Agricultural University, Zhengzhou 450046, China

2. School of Computer Science and Mathematics, Keele University, Keele ST5 5AA, UK

Abstract

Affective understanding of language is an important research focus in artificial intelligence. The large-scale annotated datasets of Chinese textual affective structure (CTAS) are the foundation for subsequent higher-level analysis of documents. However, there are very few published datasets for CTAS. This paper introduces a new benchmark dataset for the task of CTAS to promote development in this research direction. Specifically, our benchmark is a CTAS dataset with the following advantages: (a) it is Weibo-based, which is the most popular Chinese social media platform used by the public to express their opinions; (b) it includes the most comprehensive affective structure labels at present; and (c) we propose a maximum entropy Markov model that incorporates neural network features and experimentally demonstrate that it outperforms the two baseline models.

Funder

Ministry of Education

Science and Technology Planning Project of Henan Province

Natural Science Foundation of Henan Province

Publisher

MDPI AG

Subject

General Physics and Astronomy

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