PSA: A novel optimization algorithm based on survival rules of porcellio scaber

September 28, 2017 ยท Declared Dead ยท ๐Ÿ› IEEE Advanced Information Technology, Electronic and Automation Control Conference

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Authors Yinyan Zhang, Pei Zhang, Shuai Li arXiv ID 1709.09840 Category cs.NE: Neural & Evolutionary Citations 13 Venue IEEE Advanced Information Technology, Electronic and Automation Control Conference Last Checked 4 months ago
Abstract
Bio-inspired algorithms such as neural network algorithms and genetic algorithms have received a significant amount of attention in both academic and engineering societies. In this paper, based on the observation of two major survival rules of a species of woodlice, i.e., porcellio scaber, we present an algorithm called the porcellio scaber algorithm (PSA) for solving general unconstrained optimization problems, including differentiable and non-differential ones as well as the case with local optima. Numerical results based on benchmark problems are presented to validate the efficacy of PSA.
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