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片段级别的双编码器方面情感三元组抽取模型

  • Yunqi Zhang
  • , Songda Li
  • , Yuquan Lan
  • , Dongxu Li
  • , Hui Zhao*
  • *此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

Aspect sentiment triplet extraction (ASTE) is one of the subtasks of aspect-based sentiment analysis, which aims to identify all aspect terms, their corresponding opinion terms and sentiment polarities in sentences. Currently, pipeline or end-to-end models are adopted to accomplish the ASTE task. The former cannot solve the overlapping problem of aspect terms in triplets and ignores the dependency between opinion terms and sentiment polarities. The latter divides the ASTE task into two subtasks of aspect-opinion-extraction and sentiment-polarity-classification, which applies multi-task learning through a shared encoder. However, this setting does not distinguish the differences between the features of the two subtasks, leading to the feature confusion problem. SD-ASTE (span-level dual-encoder model for ASTE), a pipeline model with two modules, is proposed to address the above problems. The first module extracts aspect terms and opinion terms based on spans. The span feature representation incorporates span head, tail and length information to focus on the boundary information of aspect terms and opinion terms. The second module judges the sentiment polarities expressed by aspect-opinion span pairs. The span-pair feature representation is based on levitated markers to focus on the dependency among triplet elements. The model utilizes two independent encoders to extract different features for each module. Comparative experimental results on multiple datasets show that the model is superior to the state-of-the-art pipeline and end-to-end models. Validity experiments show the effectiveness of the span feature representation, span-pair feature representation and the two independent encoders.

投稿的翻译标题Span-Level Dual-Encoder Model for Aspect Sentiment Triplet Extraction
源语言繁体中文
页(从-至)3010-3019
页数10
期刊Journal of Frontiers of Computer Science and Technology
17
12
DOI
出版状态已出版 - 10 12月 2023

关键词

  • aspect sentiment triplet extraction (ASTE)
  • independent encoders
  • pipeline model
  • sentiment analysis
  • span

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