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Papers/Transformation Networks for Target-Oriented Sentiment Clas...

Transformation Networks for Target-Oriented Sentiment Classification

Xin Li, Lidong Bing, Wai Lam, Bei Shi

2018-05-03ACL 2018 7Aspect-Based Sentiment Analysis (ABSA)Sentiment ClassificationGeneral ClassificationClassification
PaperPDFCode(official)Code

Abstract

Target-oriented sentiment classification aims at classifying sentiment polarities over individual opinion targets in a sentence. RNN with attention seems a good fit for the characteristics of this task, and indeed it achieves the state-of-the-art performance. After re-examining the drawbacks of attention mechanism and the obstacles that block CNN to perform well in this classification task, we propose a new model to overcome these issues. Instead of attention, our model employs a CNN layer to extract salient features from the transformed word representations originated from a bi-directional RNN layer. Between the two layers, we propose a component to generate target-specific representations of words in the sentence, meanwhile incorporate a mechanism for preserving the original contextual information from the RNN layer. Experiments show that our model achieves a new state-of-the-art performance on a few benchmarks.

Results

TaskDatasetMetricValueModel
Sentiment AnalysisSemEval-2014 Task-4Laptop (Acc)76.01TNet-LF
Sentiment AnalysisSemEval-2014 Task-4Mean Acc (Restaurant + Laptop)78.4TNet-LF
Sentiment AnalysisSemEval-2014 Task-4Restaurant (Acc)80.79TNet-LF
Sentiment AnalysisSemEval-2014 Task-4Laptop (Acc)76.01TNet
Sentiment AnalysisSemEval-2014 Task-4Restaurant (Acc)80.79TNet
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Laptop (Acc)76.01TNet-LF
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Mean Acc (Restaurant + Laptop)78.4TNet-LF
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant (Acc)80.79TNet-LF
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Laptop (Acc)76.01TNet
Aspect-Based Sentiment Analysis (ABSA)SemEval-2014 Task-4Restaurant (Acc)80.79TNet

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