EEG channel selection-based binary particle swarm optimization with recurrent convolutional autoencoder for emotion recognition

Electroencephalography (EEG) signals can demonstrate the activities of the human brain and recognize different emotional states. Emotion recognition based on full EEG channels leads to the use of redundant data and increases the hardware complexity. This paper presents a channel selection method bas...

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Veröffentlicht in:Biomedical signal processing and control Jg. 84; S. 104783
Hauptverfasser: Kouka, Najwa, Fourati, Rahma, Fdhila, Raja, Siarry, Patrick, Alimi, Adel M.
Format: Journal Article
Sprache:Englisch
Veröffentlicht: Elsevier Ltd 01.07.2023
Elsevier
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Abstract Electroencephalography (EEG) signals can demonstrate the activities of the human brain and recognize different emotional states. Emotion recognition based on full EEG channels leads to the use of redundant data and increases the hardware complexity. This paper presents a channel selection method based on a new Binary Many-Objective Particle Swarm Optimization with Cooperative Agents (BMaOPSO-CA). More specifically, we perform unsupervised feature learning with recurrent convolutional layers based on autoencoder architecture directly from clean EEG signals. Extensive validation on three public effective benchmarks, i.e. DASPS, DEAP, and SEED which are different in channel number used stimuli, and participant ratings, was carried out with subject independent scheme. As result, the experimental study highlights the optimal electrode locations related to emotions, leading to analyze the relationship between specific brain regions and emotions. •The design of EEG channel selection as an optimization problem with four objectives.•A ConvLSTM-based autoencoder model is proposed for spatio-temporal feature learning.•A memory updating is proposed to improve the particle’s local exploitation ability.•A multiple-swarm-based learning strategy is introduced.•An extensive validation on three public datasets with varied characteristics.
AbstractList Electroencephalography (EEG) signals can demonstrate the activities of the human brain and recognize different emotional states. Emotion recognition based on full EEG channels leads to the use of redundant data and increases the hardware complexity. This paper presents a channel selection method based on a new Binary Many-Objective Particle Swarm Optimization with Cooperative Agents (BMaOPSO-CA). More specifically, we perform unsupervised feature learning with recurrent convolutional layers based on autoencoder architecture directly from clean EEG signals. Extensive validation on three public effective benchmarks, i.e. DASPS, DEAP, and SEED which are different in channel number used stimuli, and participant ratings, was carried out with subject independent scheme. As result, the experimental study highlights the optimal electrode locations related to emotions, leading to analyze the relationship between specific brain regions and emotions. •The design of EEG channel selection as an optimization problem with four objectives.•A ConvLSTM-based autoencoder model is proposed for spatio-temporal feature learning.•A memory updating is proposed to improve the particle’s local exploitation ability.•A multiple-swarm-based learning strategy is introduced.•An extensive validation on three public datasets with varied characteristics.
ArticleNumber 104783
Author Siarry, Patrick
Fourati, Rahma
Fdhila, Raja
Kouka, Najwa
Alimi, Adel M.
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  surname: Kouka
  fullname: Kouka, Najwa
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  organization: Research Groups in Intelligent Machines, National Engineering School of Sfax (ENIS), University of Sfax, BP 1173, 3038, Sfax, Tunisia
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  givenname: Rahma
  orcidid: 0000-0001-8783-6895
  surname: Fourati
  fullname: Fourati, Rahma
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  organization: Research Groups in Intelligent Machines, National Engineering School of Sfax (ENIS), University of Sfax, BP 1173, 3038, Sfax, Tunisia
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  givenname: Raja
  surname: Fdhila
  fullname: Fdhila, Raja
  email: raja.fdhila@ieee.org
  organization: Research Groups in Intelligent Machines, National Engineering School of Sfax (ENIS), University of Sfax, BP 1173, 3038, Sfax, Tunisia
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  givenname: Patrick
  surname: Siarry
  fullname: Siarry, Patrick
  email: siarry@u-pec.fr
  organization: Laboratoire Image Signaux et Systèmes Intelligents (LISSI), Université de Paris Est, 94400 Créteil, France
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  givenname: Adel M.
  surname: Alimi
  fullname: Alimi, Adel M.
  email: adel.alimi@ieee.org
  organization: Research Groups in Intelligent Machines, National Engineering School of Sfax (ENIS), University of Sfax, BP 1173, 3038, Sfax, Tunisia
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Keywords Binary particle swarm optimization
Local learning strategy
Channel selection
Convolutional LSTM
Unsupervised EEG feature learning
Language English
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Snippet Electroencephalography (EEG) signals can demonstrate the activities of the human brain and recognize different emotional states. Emotion recognition based on...
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StartPage 104783
SubjectTerms Binary particle swarm optimization
Channel selection
Computer Science
Convolutional LSTM
Local learning strategy
Unsupervised EEG feature learning
Title EEG channel selection-based binary particle swarm optimization with recurrent convolutional autoencoder for emotion recognition
URI https://dx.doi.org/10.1016/j.bspc.2023.104783
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