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A genetic programming-based approach to the classification of multiclass microarray datasets

机译:基于遗传编程的多类微阵列数据集分类方法

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摘要

MOTIVATION: Feature selection approaches have been widely applied to deal with the small sample size problem in the analysis of micro-array datasets. For the multiclass problem, the proposed methods are based on the idea of selecting a gene subset to distinguish all classes. However, it will be more effective to solve a multiclass problem by splitting it into a set of two-class problems and solving each problem with a respective classification system. RESULTS: We propose a genetic programming (GP)-based approach to analyze multiclass microarray datasets. Unlike the traditional GP, the individual proposed in this article consists of a set of small-scale ensembles, named as sub-ensemble (denoted by SE). Each SE consists of a set of trees. In application, a multiclass problem is divided into a set of two-class problems, each of which is tackled by a SE first. The SEs tackling the respective two-class problems are combined to construct a GP individual, so each individual can deal with a multiclass problem directly. Effective methods are proposed to solve the problems arising in the fusion of SEs, and a greedy algorithm is designed to keep high diversity in SEs. This GP is tested in five datasets. The results show that the proposed method effectively implements the feature selection and classification tasks.
机译:动机:特征选择方法已被广泛用于处理微阵列数据集分析中的小样本量问题。对于多类别问题,提出的方法基于选择基因子集以区分所有类别的思想。但是,通过将一个多类问题分解为一组两类问题并使用各自的分类系统来解决每个问题,将更加有效。结果:我们提出了一种基于遗传编程(GP)的方法来分析多类微阵列数据集。与传统的GP不同,本文中提出的个体由一组小规模的合奏组成,称为子合奏(用SE表示)。每个SE由一组树组成。在应用程序中,多类问题分为两类问题,每个类首先由SE解决。解决各自两类问题的SE组合在一起构成一个GP个体,因此每个个体都可以直接处理多类问题。提出了有效的方法来解决SE融合中出现的问题,并设计了一种贪婪算法来保持SE的高多样性。该GP在五个数据集中进行了测试。结果表明,该方法有效地实现了特征选择和分类任务。

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