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融合多元文本信息和注意力机制的方面级情感分类方法

冯勇 徐健航 王嵘冰 徐红艳

计算机与数字工程2024,Vol.52Issue(3):903-908,6.
计算机与数字工程2024,Vol.52Issue(3):903-908,6.DOI:10.3969/j.issn.1672-9722.2024.03.045

融合多元文本信息和注意力机制的方面级情感分类方法

Aspect-level Emotion Classification Method Integrating Multiple Textual Information and Attention Mechanism

冯勇 1徐健航 1王嵘冰 1徐红艳1

作者信息

  • 1. 辽宁大学信息学院 沈阳 110036
  • 折叠

摘要

Abstract

In order to solve the problem that the current sentiment classification methods do not fully utilize text information and lack consideration of user preferences,resulting in low sentiment classification accuracy,this paper introduces an attention mechanism to deal with multiple texts,and uses the SRNN model to fully extract Based on the hidden features of text,an aspect-lev-el sentiment classification method that fuses multiple textual information and attention mechanisms is proposed.This method takes the e-commerce platform as the research object,comprehensively uses the product introduction text and user comment text,firstly uses the attention mechanism to interact with the two text information,and obtains the representation vector that integrates multiple texts.The information is processed to fully extract the hidden features of the text.Finally,the different aspects involved in the com-ment information are trained with the corresponding aspect processing module,and the most interesting aspect is obtained according to the user's preference,and the feature vector is inputted into the aspect processing module,perform aspect-level sentiment polari-ty calculation,and finally obtain sentiment classification results.Compared with the current mainstream methods based on LSTM and CNN,the method proposed in this paper is significantly improved in accuracy and F1 value.

关键词

情感分类/方面级/多元文本/注意力机制/SRNN

Key words

sentiment classification/aspect-level/multiple textual information/attention mechanism/SRNN

分类

信息技术与安全科学

引用本文复制引用

冯勇,徐健航,王嵘冰,徐红艳..融合多元文本信息和注意力机制的方面级情感分类方法[J].计算机与数字工程,2024,52(3):903-908,6.

基金项目

辽宁省社会科学规划基金项目(编号:L21BGL026)资助. (编号:L21BGL026)

计算机与数字工程

OACSTPCD

1672-9722

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