Chinese Event Extraction Method Based on Roformer Model

Author:

Qiang Baohua1ORCID,Zhou Xiangyu1,Wang Yufeng2,Yang Xianyi1ORCID,Wang Yuemeng2,Tian Jubo2,Chen Peng1

Affiliation:

1. Guangxi Key Laboratory of Image and Graphic Intelligent Processing, Guilin University of Electronic Technology, Guilin 541004, China

2. Hebei Key Laboratory of Intelligent Information Perception and Processing, The 54th Research Institute of CETC, Shijiazhuang 050081, China

Abstract

Event extraction is an important research direction in the field of natural language processing. The current Chinese event extraction field still suffers from errors in the pretraining and fine-tuning stages, inability to directly handle texts with more than 512 tokens, and inaccurate event extraction due to insufficient semantic sample diversity. In this paper, we propose a Chinese event extraction method RoformerFC (Roformer model with FGM and CRF) based on the Roformer model to address the above problems. Firstly, our method utilizes the Roformer model based on rotary position embedding, which both moderates the errors in the pretraining and fine-tuning phases and allows the model to directly handle texts with more than 512 tokens; then, the adversarial networks based on FGM (fast gradient method) are realized to increase the diversity of semantic feature samples; finally, the classical CRF (conditional random fields) model is used to decode and identify the event element entity and its corresponding event role and event type. On the short text DuEE dataset, the microP, microR, and microF of our method improved 1.26%, 4.01%, and 2.68%, respectively, over the classical Chinese event extraction method BERT-CRF. On the long text JsEE dataset, the microP, microR, and microF of our method improved 2.26%, 5.03%, and 3.72%, respectively, over the classical Chinese event extraction method BERT-CRF.

Funder

Innovation Project of GUET Graduate Education

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Information Systems

Reference21 articles.

1. Survey of event extraction;C. M. Ma;Computer Applications,2022

2. Automatic text summarization: A comprehensive survey

3. Information retrieval methodology for aiding scientific database search

4. Joint Event Extraction via Recurrent Neural Networks

5. Survey of Chinese event extraction research;W. Xiang;Computer Technology and Development,2020

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