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EmotionX-AR: CNN-DCNN autoencoder based Emotion Classifier

2018-07-01 · WS 2018 7 · Sopan Khosla

In this paper, we model emotions in EmotionLines dataset using a convolutional-deconvolutional autoencoder (CNN-DCNN) framework. We show that adding a joint reconstruction loss improves performance. Quantitative evaluation with jointly trained network, augmented with linguistic features, reports best accuracies for emotion prediction; namely joy, sadness, anger, and neutral emotion in text.

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Emotion ClassificationEmotion RecognitionSentiment Analysis

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