2022
DOI: 10.3991/ijet.v17i17.30243
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Cognitive Learning Style Detection in e-Learning Environments using Artificial Neural Network

Abstract: COVID-19 pandemic has impacted all aspects of our lives including learning. With the particular growth of e-learning, teaching approaches are being implemented at a distance on online platforms due to this pandemic. In this context, to make student involved throughout the online course, it is recommended to create an efficient platform similar to the traditional learning mode.  In this study, we aims to improve learning style detection process by exploring additional such as cognitive traits. In fact, we have … Show more

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“…The results of the study of 27 articles provide information about the names of the journals as follows: (Benabbes et al, 2023;Kolekar et al, 2017;Li, 2023;Rami et al, The data presented in the above The results of the study of 27 articles provide information about the names of the journals as follows:…”
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confidence: 99%
“…The results of the study of 27 articles provide information about the names of the journals as follows: (Benabbes et al, 2023;Kolekar et al, 2017;Li, 2023;Rami et al, The data presented in the above The results of the study of 27 articles provide information about the names of the journals as follows:…”
mentioning
confidence: 99%