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Comparison of a genetic algorithm to grammatical evolution for automated design of genetic programming classification algorithms

机译:遗传程序分类算法自动设计的遗传算法与语法进化的比较

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Genetic Programming (GP) is gaining increased attention as an effective method for inducing classifiers for data classification. However, the manual design of a genetic programming classification algorithm is a non-trivial time consuming process. This research investigates the hypothesis that automating the design of a GP classification algorithm for data classification can still lead to the induction of effective classifiers and also reduce the design time. Two evolutionary algorithms, namely, a genetic algorithm (GA) and grammatical evolution (GE) are used to automate the design of GP classification algorithms. The classification performance of the automated designed GP classifiers i.e. GA designed GP classifiers and GE designed GP classifiers are compared to each other and to manually designed GP classifiers on real-world problems. Furthermore, a comparison of the design times of automated design and manual design is also carried out for the same set of problems. The automated designed classifiers were found to outperform manually designed classifiers across problem domains. Automated design time is also found to be less than manual design time. This study revealed that for the considered datasets GE performs better for binary classification while the GA does better for multiclass classification. Overall the results of the study are in support of the hypothesis. (C) 2018 Elsevier Ltd. All rights reserved.
机译:遗传规划(GP)作为一种诱导分类器进行数据分类的有效方法正受到越来越多的关注。但是,遗传程序分类算法的手动设计是一个不费时的过程。这项研究调查了以下假设,即用于数据分类的GP分类算法的自动化设计仍然可以导致引入有效的分类器,并且还可以减少设计时间。遗传算法(GA)和语法进化算法(GE)这两种进化算法用于使GP分类算法的设计自动化。将自动设计的GP分类器(即GA设计的GP分类器和GE设计的GP分类器)的分类性能进行比较,并针对实际问题与手动设计的GP分类器进行比较。此外,还针对同一组问题对自动设计和手动设计的设计时间进行了比较。发现在各个问题领域中,自动设计的分类器均优于手动设计的分类器。还发现自动设计时间小于手动设计时间。这项研究表明,对于考虑的数据集,GE在二元分类中表现更好,而GA在多类分类中表现更好。总体而言,研究结果支持该假设。 (C)2018 Elsevier Ltd.保留所有权利。

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