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Papers/Introducing Syntactic Structures into Target Opinion Word ...

Introducing Syntactic Structures into Target Opinion Word Extraction with Deep Learning

Amir Pouran Ben Veyseh, Nasim Nouri, Franck Dernoncourt, Dejing Dou, Thien Huu Nguyen

2020-10-26EMNLP 2020 11Sentiment AnalysisAspect-Based Sentiment AnalysisAspect-oriented Opinion ExtractionAspect-Based Sentiment Analysis (ABSA)Deep Learning
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Abstract

Targeted opinion word extraction (TOWE) is a sub-task of aspect based sentiment analysis (ABSA) which aims to find the opinion words for a given aspect-term in a sentence. Despite their success for TOWE, the current deep learning models fail to exploit the syntactic information of the sentences that have been proved to be useful for TOWE in the prior research. In this work, we propose to incorporate the syntactic structures of the sentences into the deep learning models for TOWE, leveraging the syntax-based opinion possibility scores and the syntactic connections between the words. We also introduce a novel regularization technique to improve the performance of the deep learning models based on the representation distinctions between the words in TOWE. The proposed model is extensively analyzed and achieves the state-of-the-art performance on four benchmark datasets.

Results

TaskDatasetMetricValueModel
Sentiment AnalysisSemEval-2014 Task-4Laptop 2014 (F1)75.77ONG
Sentiment AnalysisSemEval-2014 Task-4Restaurant 2014 (F1)82.33ONG
Sentiment AnalysisSemEval-2014 Task-4Restaurant 2015 (F1)78.81ONG
Sentiment AnalysisSemEval-2014 Task-4Restaurant 2016 (F1)86.01ONG
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Laptop 2014 (F1)75.77ONG
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant 2014 (F1)82.33ONG
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant 2015 (F1)78.81ONG
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant 2016 (F1)86.01ONG

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