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InterCriteria Analysis by Pairs and Triples of Genetic Algorithms Application for Models Identification

机译:遗传算法成对和三元组间分析在模型识别中的应用

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In this investigation the InterCriteria Analysis (ICrA) approach is applied. The apparatuses of index matrices and intuitionistic fuzzy sets are at the core of ICrA. They are used to examine the influences of two main genetic algorithms (GA) parameters-the rates of crossover (xovr) and mutation (mutr). A series of parameter identification procedures for 5. cerevisiae and E. coli fermentation process models is fulfilled. Twenty GA with different xovr and mutr values are applied. Relations between ICrA criteria-GA parameters and outcomes, on the one hand, and fermentation process model parameters, on the other hand, are investigated. The ICrA approach is applied by pairs, as well as by triples. The obtained results are thoroughly analysed towards computation time and model accuracy and some conclusions about the derived criteria interactions are reported.
机译:在这项调查中,采用了标准间分析(ICrA)方法。指标矩阵和直觉模糊集的设备是ICrA的核心。它们用于检查两个主要遗传算法(GA)参数的影响-交叉率(xovr)和变异率(mutr)。 5.完成了针对啤酒和大肠杆菌发酵过程模型的一系列参数识别程序。应用了具有不同xovr和mutr值的20个GA。一方面研究了ICrA标准-GA参数和结果之间的关系,另一方面研究了发酵过程模型参数之间的关系。 ICrA方法是成对使用的,也可以是三元组的。对计算结果和模型准确性进行了彻底分析,并报告了有关导出的标准交互作用的一些结论。

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