2020
DOI: 10.1155/2020/6097167
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Optimal Learning Behavior Prediction System Based on Cognitive Style Using Adaptive Optimization-Based Neural Network

Abstract: Widespread development of system software, the process of learning, and the excellence in profession of teaching are the formidable challenges faced by the learning behavior prediction system. The learning styles of teachers have different kinds of content designs to enhance their learning. In this learning environment, teachers can work together with the students, but the learning materials are designed by the teachers. The cognitive style deals with mental activities such as learning, remembering, thinking, … Show more

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Cited by 5 publications
(4 citation statements)
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References 46 publications
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“…Mobile learning [37], [38] Learning style E-learning and traditional educational [39] Learning style, initial knowledge and motivation E-learning [40] Learning style, knowledge level, prior knowledge, learners' preferences E-learning -DAHS [41] Cognitive styles; learning behaviour and browsing behaviour E-learning [42] Learning style and learning motivation E-learning [43] Learning style and cognitive level…”
Section: Referencesmentioning
confidence: 99%
“…Mobile learning [37], [38] Learning style E-learning and traditional educational [39] Learning style, initial knowledge and motivation E-learning [40] Learning style, knowledge level, prior knowledge, learners' preferences E-learning -DAHS [41] Cognitive styles; learning behaviour and browsing behaviour E-learning [42] Learning style and learning motivation E-learning [43] Learning style and cognitive level…”
Section: Referencesmentioning
confidence: 99%
“…Aldabbagh et al 19 proposed an adaptive optimization‐based neural network (AONN) model for optimal learning behavior prediction. Features of browsing behavior and e‐learning behavior are extracted and integrated into the artificial neural network (ANN) input.…”
Section: Related Workmentioning
confidence: 99%
“…A substantial amount of work has been done on the recognition of static gestures using cameras. For static hand, gesture recognition features are extracted via different methods [27][28][29][30][31]. Features can be extracted using the full hand or by using only the fingers of the hand.…”
Section: Hgr Through Cameramentioning
confidence: 99%