Research on Pattern Representation Based on Keyword and Word Embedding in Chinese Entity Relation Extraction

Author:

Ye Feiyue, ,Qin Zhentao

Abstract

With the rapid development of the Internet, it is becoming more and more important to extract the relationship between the entity from the massive network text and then to build the knowledge graph or the knowledge base. In this paper, we focus on the research of the pattern representation in relation extraction, and extract the high accuracy Chinese entity pairs from large scale web texts. Past relation patterns only consider shallow lexical and syntax, not accurately and deeply express pattern context information, and do not consider keywords information. According to the new entity relation extraction technology and the characteristics of Chinese corpora, we define pattern representation based on keywords and word embedding information, extract deep semantic feature of context information, and strengthen keywords information effect for relation extraction. In addition, we propose a method for obtaining sentence keyword based on word embedding. In the experiment, we use ChineseHudongEncyclopedia corpus to implement the character relation extraction system, and test the character relation extraction effect. The experimental results show that this method effectively improves the quality of the pattern, and obtains a favorable relation extraction performance.

Publisher

Fuji Technology Press Ltd.

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Human-Computer Interaction

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Offline Handwritten Chinese Character Using Convolutional Neural Network: State-of-the-Art Methods;Journal of Advanced Computational Intelligence and Intelligent Informatics;2023-07-20

2. Exploring Chinese word embedding with similar context and reinforcement learning;Neural Computing and Applications;2022-08-19

3. Improved Chinese Sentence Semantic Similarity Calculation Method Based on Multi-Feature Fusion;Journal of Advanced Computational Intelligence and Intelligent Informatics;2021-07-20

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