Hybrid model based on Genetic Algorithms and SVM applied to variable selection within fruit juice classification

基于遗传算法和支持向量机的混合模型应用于果汁分类中的变量选择

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Abstract

Given the background of the use of Neural Networks in problems of apple juice classification, this paper aim at implementing a newly developed method in the field of machine learning: the Support Vector Machines (SVM). Therefore, a hybrid model that combines genetic algorithms and support vector machines is suggested in such a way that, when using SVM as a fitness function of the Genetic Algorithm (GA), the most representative variables for a specific classification problem can be selected.

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