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    This study introduces a novel Perception Convolutional Neural Network (PCNN) for enhanced facial expression recognition (FER). The PCNN effectively captures subtle facial changes by integrating local and global features, improving FER performance on diverse datasets.

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    Area of Science:

    • Computer Science
    • Artificial Intelligence
    • Machine Learning

    Background:

    • Convolutional Neural Networks (CNNs) are widely used for facial expression recognition (FER).
    • Existing CNNs may overlook the importance of facial segmentation in accurately recognizing expressions.
    • There is a need for models that can capture both local facial cues and global facial structure for improved FER.

    Purpose of the Study:

    • To propose a novel Perception Convolutional Neural Network (PCNN) for enhanced facial expression recognition.
    • To improve the sensitivity of FER systems to subtle facial changes.
    • To achieve superior performance on various FER benchmarks by integrating local and global facial information.

    Main Methods:

    • The proposed PCNN utilizes five parallel networks to learn local facial features from eyes, cheeks, and mouth.
    • A multi-domain interaction mechanism fuses local sensory organ features with global facial structural features.
    • A two-phase loss function is designed to ensure the accuracy of extracted information and reconstructed facial images.

    Main Results:

    • The PCNN demonstrates superior performance on multiple FER benchmarks, including CK+, JAFFE, FER2013, FERPlus, RAF-DB, and the Occlusion and Pose Variant Dataset.
    • Experimental results validate the effectiveness of the proposed PCNN in capturing subtle facial variations.
    • The integration of local and global features significantly enhances FER accuracy.

    Conclusions:

    • The developed PCNN offers a significant advancement in facial expression recognition.
    • The PCNN's ability to process both local and global facial information leads to robust and accurate expression classification.
    • The proposed model provides a promising direction for future research in FER systems.