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Normalized deep learning algorithms based information aggregation functions to classify motor imagery EEG signal

  • 16-08-2023
  • Original Article
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Abstract

The article delves into the classification of motor imagery EEG signals using deep learning algorithms. It introduces frequency domain analysis and information aggregation functions for enhanced preprocessing and feature extraction. The study presents three deep learning models—batch normalized CNN (b-CNN), layer normalized LSTM (l-LSTM), and hybrid Recurrent Convolutional Neural Network (R-CNN)—and evaluates their performance on the BCI Competition IV dataset 2a and a self-recorded dataset using the EMOTIV EPOC headset. The models are compared based on accuracy, precision, recall, and F1-score, with the R-CNN model showing superior performance. The research highlights the potential of deep learning in improving the classification of EEG signals and suggests applications for assisting individuals with motor disabilities.

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Title
Normalized deep learning algorithms based information aggregation functions to classify motor imagery EEG signal
Authors
Ammar A. Al-Hamadani
Mamoun J. Mohammed
Suphian M. Tariq
Publication date
16-08-2023
Publisher
Springer London
Published in
Neural Computing and Applications / Issue 30/2023
Print ISSN: 0941-0643
Electronic ISSN: 1433-3058
DOI
https://doi.org/10.1007/s00521-023-08944-9
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