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Issue title: Recent advancements in computer, communication and computational sciences
Guest editors: K.K. Mishra
Article type: Research Article
Authors: Singh, Shailendra Pratap* | Kumar, Anoj
Affiliations: Department of Computer Science and Engineering, Motilal Nehru National Institute of Technology Allahabad, Allahabad, UP, India
Correspondence: [*] Corresponding author. Shailendra Pratap Singh, Department of Computer Science and Engineering, Motilal Nehru National Institute of Technology Allahabad, Allahabad, UP, India. Tel.: +91 532 2271359; E-mail: shail2007singh@gmail.com.
Abstract: The differential evolution, one of the most powerful nature inspired algorithm is used to solve the real world problems. This algorithm takes minimum number of function evaluations to reach near to global optimum solution. Although its performance is very good, yet it suffers from the problem of stagnation. In this paper, some new mutation strategies are proposed to improve the performance of differential evolution (DE). The proposed method adds one more vector named as Homeostasis mutation vector in the existing mutation vectors to provide more bandwidth for selecting effective mutant solutions. The proposed approach provides more promising solutions to guide the evolution and helps DE escaping the situation of stagnation. Performance of proposed algorithm is compared with other state-of-the-art algorithms on COCO (Comparing Continuous Optimizers) framework. The result verifies that our proposed Homeostasis mutation strategy outperform most of the state-of-the-art DE variants and other state-of-the-art population based optimization algorithms.
Keywords: Adaptation, optimization, evolutionary algorithm
DOI: 10.3233/JIFS-169289
Journal: Journal of Intelligent & Fuzzy Systems, vol. 32, no. 5, pp. 3525-3537, 2017
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