Cortico-Hippocampal Computational Modeling Using Quantum Neural Networks to Simulate Classical Conditioning Paradigms.

classical conditioning computational modeling cortico-hippocampal model lesioned and intact model quantum neural network

Journal

Brain sciences
ISSN: 2076-3425
Titre abrégé: Brain Sci
Pays: Switzerland
ID NLM: 101598646

Informations de publication

Date de publication:
07 Jul 2020
Historique:
received: 05 06 2020
revised: 26 06 2020
accepted: 03 07 2020
entrez: 11 7 2020
pubmed: 11 7 2020
medline: 11 7 2020
Statut: epublish

Résumé

Most existing cortico-hippocampal computational models use different artificial neural network topologies. These conventional approaches, which simulate various biological paradigms, can get slow training and inadequate conditioned responses for two reasons: increases in the number of conditioned stimuli and in the complexity of the simulated biological paradigms in different phases. In this paper, a cortico-hippocampal computational quantum (CHCQ) model is proposed for modeling intact and lesioned systems. The CHCQ model is the first computational model that uses the quantum neural networks for simulating the biological paradigms. The model consists of two entangled quantum neural networks: an adaptive single-layer feedforward quantum neural network and an autoencoder quantum neural network. The CHCQ model adaptively updates all the weights of its quantum neural networks using quantum instar, outstar, and Widrow-Hoff learning algorithms. Our model successfully simulated several biological processes and maintained the output-conditioned responses quickly and efficiently. Moreover, the results were consistent with prior biological studies.

Identifiants

pubmed: 32645988
pii: brainsci10070431
doi: 10.3390/brainsci10070431
pmc: PMC7407954
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : National Key R&D Program of China
ID : 2017YFB1300400
Organisme : Science and Technology Project of Zhejiang Province
ID : 2019C01043

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Auteurs

Mustafa Khalid (M)

The State Key Laboratory of Industrial Control Technology, Institute of Cyber-Systems and Control, Zhejiang University, Hangzhou 310027, China.

Jun Wu (J)

The State Key Laboratory of Industrial Control Technology, Institute of Cyber-Systems and Control, Zhejiang University, Hangzhou 310027, China.
The Binhai Industrial Technology Research Institute of Zhejiang University, Tianjin 300301, China.

Taghreed M Ali (T)

Electrical Engineering Department, University of Baghdad, Baghdad 10071, Iraq.

Thaair Ameen (T)

The Institute of Computer Science, Zhejiang University, Hangzhou 310027, China.

Ahmed A Moustafa (AA)

The Marcs Institute for Brain and Behaviour and School of Psychology, Western Sydney University, Sydney 1797, Australia.
The Department of Human Anatomy and Physiology, the Faculty of Health Sciences, University of Johannesburg, Johannesburg 2198, South Africa.

Qiuguo Zhu (Q)

The State Key Laboratory of Industrial Control Technology, Institute of Cyber-Systems and Control, Zhejiang University, Hangzhou 310027, China.

Rong Xiong (R)

The State Key Laboratory of Industrial Control Technology, Institute of Cyber-Systems and Control, Zhejiang University, Hangzhou 310027, China.

Classifications MeSH