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Development of hybrid algorithm based on simulated annealing and genetic algorithm to reliability redundancy optimization

机译:基于模拟退火和遗传算法的混合算法可靠性可靠性优化开发

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摘要

Purpose - The purpose of this paper is to present an application of the simulated annealing algorithm to the redundant system reliability optimization. Its main aim is to analyze and compare this optimization method performance with those of similar application. Design/methodology/approach - The methods that were used to compare results are the genetic algorithm, the Lagrange Multipliers, and the evolution strategy. A hybrid algorithm composed by simulated annealing and genetic algorithm was developed in order to achieve the general applicability of the methods. The hybrid algorithm also tries to exploit the positive aspects of each method. Findings - The results presented by the simulated annealing and the hybrid algorithm are significant, and validate the methods as a robust tool for parameter optimization in mechanical projects development. Originality/value - The main objective is to propose a method for redundancy optimization in mechanical systems, which are not as large as electric and electronic systems, but involves high costs associated to redundancy and requires a high level of safety standards like: automotive and aerospace systems.
机译:目的-本文的目的是介绍模拟退火算法在冗余系统可靠性优化中的应用。其主要目的是分析和比较此优化方法的性能与类似应用程序的性能。设计/方法/方法-用于比较结果的方法是遗传算法,拉格朗日乘数和进化策略。为了实现该方法的普遍适用性,提出了一种由模拟退火和遗传算法组成的混合算法。混合算法还尝试利用每种方法的积极方面。研究结果-模拟退火和混合算法提供的结果是有意义的,并且验证了该方法是机械项目开发中参数优化的强大工具。原创性/价值-主要目的是提出一种机械系统中的冗余优化方法,该系统不像电气和电子系统那么大,但是涉及与冗余相关的高成本,并且需要高水平的安全标准,例如:汽车和航空航天系统。

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