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Fibonacci indicator algorithm: A novel tool for complex optimization problems

机译:斐波那契指标算法:解决复杂优化问题的新工具

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摘要

In this paper a new meta-heuristic algorithm is introduced. This optimization algorithm is inspired by the very popular tool among the technical traders in the stock market called the Fibonacci Indicator. The Fibonacci Indicator uses to predict possible local maximum and minimum prices, and periods in which the price of a stock will experience a significant amount of movement. The proposed Fibonacci Indicator algorithm is validated on several Benchmark functions up to 100 dimensions to have a comparison to algorithms such as DE extensions, PSO extensions, ABC, ABC-PS, CS, MCS and GSA in the ability of convergence and finding the global optimum in different research areas. Finally two engineering design problems are used to show the performance of the algorithm. Application of the proposed Fibonacci Indicator Algorithm in a wide set of benchmark functions has asserted its capability to deal with difficult optimization problems.
机译:本文介绍了一种新的元启发式算法。该优化算法的灵感来自股票市场技术交易者中非常流行的工具,即斐波那契指标。斐波那契指标用于预测可能的局部最高和最低价格,以及股票价格将经历大量变动的时期。拟议的斐波那契指标算法在多达100个维度的几个基准功能上得到了验证,可以与DE扩展,PSO扩展,ABC,ABC-PS,CS,MCS和GSA等算法进行比较,并具有收敛能力和寻找全局最优值的能力在不同的研究领域。最后,使用两个工程设计问题来证明算法的性能。所提出的斐波那契指标算法在各种基准函数中的应用已证明其具有处理困难的优化问题的能力。

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