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Papers/Interactive Attention Networks for Aspect-Level Sentiment ...

Interactive Attention Networks for Aspect-Level Sentiment Classification

Dehong Ma, Sujian Li, Xiaodong Zhang, Houfeng Wang

2017-09-04Aspect-Based Sentiment Analysis (ABSA)Sentiment ClassificationGeneral ClassificationClassification
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Abstract

Aspect-level sentiment classification aims at identifying the sentiment polarity of specific target in its context. Previous approaches have realized the importance of targets in sentiment classification and developed various methods with the goal of precisely modeling their contexts via generating target-specific representations. However, these studies always ignore the separate modeling of targets. In this paper, we argue that both targets and contexts deserve special treatment and need to be learned their own representations via interactive learning. Then, we propose the interactive attention networks (IAN) to interactively learn attentions in the contexts and targets, and generate the representations for targets and contexts separately. With this design, the IAN model can well represent a target and its collocative context, which is helpful to sentiment classification. Experimental results on SemEval 2014 Datasets demonstrate the effectiveness of our model.

Results

TaskDatasetMetricValueModel
Sentiment AnalysisSemEval-2014 Task-4Laptop (Acc)72.1IAN
Sentiment AnalysisSemEval-2014 Task-4Mean Acc (Restaurant + Laptop)75.35IAN
Sentiment AnalysisSemEval-2014 Task-4Restaurant (Acc)78.6IAN
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Laptop (Acc)72.1IAN
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Mean Acc (Restaurant + Laptop)75.35IAN
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant (Acc)78.6IAN

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