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Genetic fuzzy classification fusion of multiple SVMs for biomedical data

机译:多个支持向量机的生物医学数据遗传模糊分类融合

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摘要

Classification of biomedical data faces a special challenge because of the characteristics of the data: too few data examples with too many features. How to improve the classification performance or the generalization ability of a classifier in the biomedical domain becomes one of the active research areas. One approach is to build a fusion model to combine multiple classifiers together and result in a combined classifier which can achieve a better performance than any of its composing individual classifiers. In this paper, we propose a SVM classifier fusion model to combine multiple SVMs by applying the knowledge of fuzzy logic and genetic algorithms. The fuzzy logic system (FLS) is constructed based on SVM accuracies and distances of data examples to SVM hyperplanes in SVM feature spaces. A genetic algorithm (GA) is used to tune the fuzzy membership functions (MFs) in the FLS and determine the optimal fuzzy fusion model. We have applied the proposed model to two biomedical data: colon tumor data and ovarian cancer data. Our experiment shows that multiple SVM classifiers complement each other well in the proposed fusion model and the ensemble achieves a better, more robust and more reliable performance than individual composing SVMs.
机译:由于数据的特征,生物医学数据的分类面临着特殊的挑战:具有太多特征的数据示例太少。如何提高生物医学领域分类器的分类性能或泛化能力成为当前研究的热点之一。一种方法是建立一个融合模型,将多个分类器组合在一起,并得到一个组合分类器,该分类器比任何组合单个分类器都能获得更好的性能。在本文中,我们通过运用模糊逻辑和遗传算法的知识,提出了一个支持向量机分类器融合模型,以将多个支持向量机进行组合。模糊逻辑系统(FLS)是基于SVM准确性和SVM特征空间中数据示例与SVM超平面的距离而构造的。遗传算法(GA)用于调整FLS中的模糊隶属度函数(MF)并确定最佳模糊融合模型。我们已将建议的模型应用于两个生物医学数据:结肠肿瘤数据和卵巢癌数据。我们的实验表明,在所提出的融合模型中,多个SVM分类器可以很好地互补,并且与单独的SVM相比,该集成可以实现更好,更强大和更可靠的性能。

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