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Papers/EmoNeXt: an Adapted ConvNeXt for Facial Emotion Recognition

EmoNeXt: an Adapted ConvNeXt for Facial Emotion Recognition

Yassine El Boudouri, Amine Bohi

2025-01-14IEEE 25th International Workshop on Multimedia Signal Processing (MMSP) 2023 9Emotion ClassificationFacial Emotion RecognitionFacial Expression RecognitionDeep LearningEmotion Recognition
PaperPDFCode(official)

Abstract

Facial expressions play a crucial role in human communication serving as a powerful and impactful means to express a wide range of emotions. With advancements in artificial intelligence and computer vision, deep neural networks have emerged as effective tools for facial emotion recognition. In this paper, we propose EmoNeXt, a novel deep learning framework for facial expression recognition based on an adapted ConvNeXt architecture network. We integrate a Spatial Transformer Network (STN) to focus on feature-rich regions of the face and Squeeze-and-Excitation blocks to capture channel-wise dependencies. Moreover, we introduce a self-attention regularization term, encouraging the model to generate compact feature vectors. We demonstrate the superiority of our model over existing state-of-the-art deep learning models on the FER2013 dataset regarding emotion classification accuracy.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingFER2013Accuracy76.12EmoNeXt
Face ReconstructionFER2013Accuracy76.12EmoNeXt
Facial Expression Recognition (FER)FER2013Accuracy76.12EmoNeXt
3DFER2013Accuracy76.12EmoNeXt
3D Face ModellingFER2013Accuracy76.12EmoNeXt
3D Face ReconstructionFER2013Accuracy76.12EmoNeXt

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