2022
DOI: 10.48550/arxiv.2207.11482
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Multimodal Emotion Recognition with Modality-Pairwise Unsupervised Contrastive Loss

Abstract: Emotion recognition is involved in several real-world applications. With an increase in available modalities, automatic understanding of emotions is being performed more accurately. The success in Multimodal Emotion Recognition (MER), primarily relies on the supervised learning paradigm. However, data annotation is expensive, time-consuming, and as emotion expression and perception depends on several factors (e.g., age, gender, culture) obtaining labels with a high reliability is hard. Motivated by these, we f… Show more

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