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Exploring the Use of Isolated Expressions and Film Clips to Evaluate Emotion Recognition by People with Traumatic Brain Injury
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Online Sequential EEG Emotion Recognition with Prototypical Alignment Based Transfer Model.

Jiayao Liu, Chengcheng Zheng, Lixian Zhu

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    Summary
    This summary is machine-generated.

    This study presents a novel online electroencephalogram (EEG) emotion recognition method using cross-subject transfer learning. The approach rapidly adapts to new subjects, improving accuracy for real-world applications.

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    Area of Science:

    • Neuroscience
    • Computer Science
    • Human-Computer Interaction

    Background:

    • Deep learning for emotion recognition requires large datasets and struggles with new data.
    • Subject-specific training data can inflate model accuracy, lacking generalizability.
    • Online learning models need efficient adaptation to new subjects and data.

    Purpose of the Study:

    • To develop an innovative online sequential electroencephalogram (EEG) emotion recognition method.
    • To enhance subject independence and rapid adaptation in emotion recognition models.
    • To improve accuracy and simplify network architecture using transfer learning and adversarial networks.

    Main Methods:

    • Utilized a cross-subject transfer learning model in an online learning environment.
    • Implemented selective parameter pruning and reinitialization for rapid subject adaptation.
    • Employed an enhanced Domain Adversarial Neural Network (DANN) to align features across emotional categories.

    Main Results:

    • Achieved average accuracies of 80.04% on the SEED dataset and 62.78% on the SEED-IV dataset.
    • Demonstrated superior performance compared to existing mainstream online learning methods.
    • Showcased rapid adaptation to new subjects under limited sample conditions with high accuracy.

    Conclusions:

    • The proposed online sequential EEG emotion recognition method offers practical application potential.
    • The approach effectively addresses limitations of traditional deep learning models in emotion recognition.
    • This method provides a robust solution for real-time, subject-independent emotion detection.