A new evolutionary algorithm: Learner performance based behavior algorithm

A novel evolutionary algorithm called learner performance based behavior algorithm (LPB) is proposed in this article. The basic inspiration of LPB originates from the process of accepting graduated learners from high school in different departments at university. In addition, the changes those learn...

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Main Authors: Chnoor M. Rahman, Tarik A. Rashid
Format: Article
Language:English
Published: Elsevier 2021-07-01
Series:Egyptian Informatics Journal
Subjects:
LPB
Online Access:http://www.sciencedirect.com/science/article/pii/S1110866520301419
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spelling doaj-73f997c0d9b74da5bb361c5e97e5d07d2021-06-11T05:12:27ZengElsevierEgyptian Informatics Journal1110-86652021-07-01222213223A new evolutionary algorithm: Learner performance based behavior algorithmChnoor M. Rahman0Tarik A. Rashid1Applied Computer Department, College of Medicals and Applied Sciences, Charmo University, Sulaimany, Iraq; Technical College of Informatics, Sulaimany Polytechnic University, Sulaimany, Iraq; Corresponding author.Computer Science and Engineering Department, University of Kurdistan Hewler, Erbil, IraqA novel evolutionary algorithm called learner performance based behavior algorithm (LPB) is proposed in this article. The basic inspiration of LPB originates from the process of accepting graduated learners from high school in different departments at university. In addition, the changes those learners should do in their studying behaviors to improve their study level at university. The most important stages of optimization; exploitation and exploration are outlined by designing the process of accepting graduated learners from high school to university and the procedure of improving the learner’s studying behavior at university to improve the level of their study, respectively. To show the accuracy of the proposed algorithm, it is evaluated against a number of test functions, such as traditional benchmark functions, CEC-C06 2019 test functions, and a real-world case study problem. The results of the proposed algorithm are then compared to the DA, GA, and PSO. The proposed algorithm produced superior results in most of the cases and comparative in some others. It is proved that the algorithm has a great ability to deal with the large optimization problems comparing to the DA, GA, and PSO. The overall results proved the ability of LPB in improving the initial population and converging towards the global optima. Moreover, the results of the proposed work are proved statistically.http://www.sciencedirect.com/science/article/pii/S1110866520301419Evolutionary algorithmsGenetic algorithmLPBLearner performance based behavior algorithmOptimizationMetaheuristic optimization algorithm
collection DOAJ
language English
format Article
sources DOAJ
author Chnoor M. Rahman
Tarik A. Rashid
spellingShingle Chnoor M. Rahman
Tarik A. Rashid
A new evolutionary algorithm: Learner performance based behavior algorithm
Egyptian Informatics Journal
Evolutionary algorithms
Genetic algorithm
LPB
Learner performance based behavior algorithm
Optimization
Metaheuristic optimization algorithm
author_facet Chnoor M. Rahman
Tarik A. Rashid
author_sort Chnoor M. Rahman
title A new evolutionary algorithm: Learner performance based behavior algorithm
title_short A new evolutionary algorithm: Learner performance based behavior algorithm
title_full A new evolutionary algorithm: Learner performance based behavior algorithm
title_fullStr A new evolutionary algorithm: Learner performance based behavior algorithm
title_full_unstemmed A new evolutionary algorithm: Learner performance based behavior algorithm
title_sort new evolutionary algorithm: learner performance based behavior algorithm
publisher Elsevier
series Egyptian Informatics Journal
issn 1110-8665
publishDate 2021-07-01
description A novel evolutionary algorithm called learner performance based behavior algorithm (LPB) is proposed in this article. The basic inspiration of LPB originates from the process of accepting graduated learners from high school in different departments at university. In addition, the changes those learners should do in their studying behaviors to improve their study level at university. The most important stages of optimization; exploitation and exploration are outlined by designing the process of accepting graduated learners from high school to university and the procedure of improving the learner’s studying behavior at university to improve the level of their study, respectively. To show the accuracy of the proposed algorithm, it is evaluated against a number of test functions, such as traditional benchmark functions, CEC-C06 2019 test functions, and a real-world case study problem. The results of the proposed algorithm are then compared to the DA, GA, and PSO. The proposed algorithm produced superior results in most of the cases and comparative in some others. It is proved that the algorithm has a great ability to deal with the large optimization problems comparing to the DA, GA, and PSO. The overall results proved the ability of LPB in improving the initial population and converging towards the global optima. Moreover, the results of the proposed work are proved statistically.
topic Evolutionary algorithms
Genetic algorithm
LPB
Learner performance based behavior algorithm
Optimization
Metaheuristic optimization algorithm
url http://www.sciencedirect.com/science/article/pii/S1110866520301419
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