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InterCriteria Analysis of Genetic Algorithms Performance

机译:遗传算法性能的标准间分析

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In this paper we apply InterCriteria Analysis (ICrA) approach based on the apparatus of Index Matrices and Intuitionistic Fuzzy Sets. The main idea is to use ICrA to establish the existing relations and dependencies of defined parameters in a non-linear model of an E. coli fed-batch cultivation process. We perform a series of model identification procedures applying Genetic Algorithms (GAs). We proposed a schema of ICrA of ICrA results to examine the obtained model identification results. The discussion about existing relations and dependencies is performed according to criteria defined in terms of ICrA. We consider as ICrA criteria model parameters and GAs outcomes on the one hand, and 14 differently tuned GAs on the other. Based on the results, we observe the mutual relations between model parameters and GAs outcomes, such as computation time and objective function value. Moreover, some conclusions about the preferred tuned GAs for the considered model parameter identification in terms of achieved accuracy for given computation time are presented.
机译:在本文中,我们使用基于索引矩阵和直觉模糊集的设备的InterCriteria分析(ICrA)方法。主要思想是使用ICrA在大肠杆菌补料分批培养过程的非线性模型中建立已定义参数的现有关系和依存关系。我们执行一系列应用遗传算法(GA)的模型识别程序。我们提出了ICrA结果的ICrA方案,以检查获得的模型识别结果。关于现有关系和依存关系的讨论是根据ICrA定义的标准进行的。我们一方面将模型参数和GA结果视为ICrA标准,另一方面将14种经过不同调整的GA作为标准。根据结果​​,我们观察到模型参数与GA结果之间的相互关系,例如计算时间和目标函数值。此外,对于在给定的计算时间下实现的精度,提出了关于用于模型参数识别的首选可调谐遗传算法的一些结论。

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