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Polarity and Intensity: the Two Aspects of Sentiment Analysis

2018-07-04 · WS 2018 7 · Leimin Tian, Catherine Lai, Johanna D. Moore

Current multimodal sentiment analysis frames sentiment score prediction as a general Machine Learning task. However, what the sentiment score actually represents has often been overlooked. As a measurement of opinions and affective states, a sentiment score generally consists of two aspects: polarity and intensity. We decompose sentiment scores into these two aspects and study how they are conveyed through individual modalities and combined multimodal models in a naturalistic monologue setting. In particular, we build unimodal and multimodal multi-task learning models with sentiment score prediction as the main task and polarity and/or intensity classification as the auxiliary tasks. Our experiments show that sentiment analysis benefits from multi-task learning, and individual modalities differ when conveying the polarity and intensity aspects of sentiment.

📄 PDF Abstract BibTeX arXiv:1807.01466

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General ClassificationMultimodal Sentiment AnalysisMulti-Task LearningSentiment AnalysisVocal Bursts Valence Prediction

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