Jaya算法对最著名的测试台问题的性能验证

Mostafa A. Elhosseini
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引用次数: 1

摘要

软计算算法是基于群体的、概率的,它们具有相同的共同控制参数,如群体规模、代数、精英规模。除了常规的控制参数外,不同的算法还需要特定的控制参数。不同算法参数的合理调优是影响算法有效性的重要因素。算法参数的不适当调优会增加计算量或受局部限制。TLBO (Teaching - Learning-based Optimization)算法是一种不需要特定算法参数的算法。Jaya是TLBO算法的一种,但只有一步,并且用户友好。本文的主要目的是介绍Jaya算法及其在最突出的工程问题中的应用。在Jaya中,现有技术的验证和监测包括案例研究,从最近的CEC 2016工作台到轮系、焊接梁、三杆桁架系统的常见工程挑战。与大多数流行的现代算法相比,所获得的结果反映了该算法的意义。
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Performance Validation of Jaya Algorithm to The Most Well-known Testbench Problem
Soft computing algorithms are population-based, probabilistic, that have the same common controlling parameters such as population size, number of generations, elite size. In addition to the regular control parameters, the different algorithms need specific control parameters for their algorithm. A good tuning of different algorithm parameters is an integral factor that affects the efficacy of the algorithm. The inappropriate tuning of the algorithm parameters increases the computational effort or adheres to local limits. Teaching Learning-based Optimization (TLBO) algorithms are algorithms that need no algorithm-specific parameter. Jaya is a kind of TLBO algorithm but has only one-step and is user-friendly. The main aims of this paper are to present the Jaya algorithm and its application to the most prominent engineering problem. The validation and monitoring of existing technology in the presented Jaya include case studies, ranging from the recent CEC 2016 workbench to the common engineering challenges for the gear train, welded beam, three-bar truss system. The results achieved reflect the significance of the algorithms in comparison with most popular modern algorithms.
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