Publication | Open Access
Wireless Sensing Technology Combined with Facial Expression to Realize Multimodal Emotion Recognition
25
Citations
37
References
2022
Year
Convolutional Neural NetworkEngineeringMachine LearningBiometricsWearable TechnologyMental HealthRecurrent Neural NetworkSocial SciencesFace DetectionFacial Recognition SystemData SciencePattern RecognitionAffective ComputingMultimodal Emotion RecognitionFeature LearningMultimodal Signal ProcessingFacial ExpressionDeep LearningFacial Expression RecognitionMultimodal SensingEmotionEmotion Recognition
Emotions significantly impact human physical and mental health, and, therefore, emotion recognition has been a popular research area in neuroscience, psychology, and medicine. In this paper, we preprocess the raw signals acquired by millimeter-wave radar to obtain high-quality heartbeat and respiration signals. Then, we propose a deep learning model incorporating a convolutional neural network and gated recurrent unit neural network in combination with human face expression images. The model achieves a recognition accuracy of 84.5% in person-dependent experiments and 74.25% in person-independent experiments. The experiments show that it outperforms a single deep learning model compared to traditional machine learning algorithms.
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