دانلود رایگان مقاله انگلیسی الگوریتم بهینه سازی انطباقی جدید وال برای بهینه سازی جهانی به همراه ترجمه فارسی
عنوان فارسی مقاله: | الگوریتم بهینه سازی انطباقی جدید وال برای بهینه سازی جهانی |
عنوان انگلیسی مقاله: | A Novel Adaptive Whale Optimization Algorithm for Global Optimization |
رشته های مرتبط: | مهندسی کامپیوتر و مهندسی صنایع، مهندسی الگوریتم ها و محاسبات و بهینه سازی سیستم ها |
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نشریه | Ijst |
کد محصول | f379 |
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بخشی از ترجمه فارسی مقاله: 1- مقدمه
2 – الگوریتم بهینه سازی وال |
بخشی از مقاله انگلیسی: 1. Introduction In the meta-heuristic algorithms, randomization plays a very crucial role in both exploration and exploitation. More strengthen randomization techniques are Markov chains, Levy flights and Gaussian or normal distribution and newest technique is adaptive technique. So meta-heuristic algorithms on integrated with adaptive technique results in less computational time to reach optimum solution, local minima avoidance and faster convergence. Population based WOA1 is a meta-heuristic optimization algorithm has an ability to avoid local optima and get global optimal solution that make it appropriate for practical applications without structural modifications in algorithm for solving different constrained or unconstraint optimization problems. WOA integrated with adaptive technique reduces the computational times for highly complex problems. Contemporary works with adaptive technique are: Adaptive Cuckoo Search Algorithm (ACSA)2,3, QGA4 , Acoustic Partial discharge (PD)5,6, HGAPSO7 , PSACO8 , HSABA9 PBILKH10, KH-QPSO11, IFA-HS12, HS/FA13, CKH14 HS/BA15HPSACO16 CSKH17, HS-CSS18, PSOHS19, DEKH20, HS/CS21, HSBBO22, CSS-PSO23 etc. The structure of the paper can be given as follows: – Section I consists of Introduction; Section II includes description of main algorithms; section III consists of competitive results analysis of unconstraint test benchmark problem; finally, acknowledgement and conclusion based on results is drawn. 2. Whale Optimization Algorithm In the meta-heuristic algorithm, a newly purposed optimization algorithm called Whale optimization algorithm (WOA), which inspired from the bubble-net hunting strategy. Algorithm describes the special hunting behavior of humpback whales, the whales follows the typical bubbles causes the creation of circular or ‘9-shaped path’ while encircling prey during hunting. Simply bubble-net feeding/hunting behavior could understand such that humpback whale went down in water approximate 10-15 meter and then after the start to produce bubbles in a spiral shape encircles prey and then follows the bubbles and moves upward the surface. Mathematic model for Whale Optimization algorithm (WOA) is given as follows: |