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Selection of Classifiers Based on Multiple Classifier Behaviour

机译:基于多个分类器行为的分类器选择

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摘要

In the field of pattern recognition, the concept of Multiple Classifier Systems (MCSs) was proposed as a method for the development of high performance classification systems. At present, the common "operation" mechanism of MCSs is the "combination" of classifiers outputs. Recently, some researchers pointed out the potentialities of "dynamic classifier selection" (DCS) as a new operation mechanism. In this paper, a DCS algorithm based on the MCS behaviour is presented. The proposed method is aimed to exploit the behaviour of the MCS in order to select, for each test pattern, the classifier that is more likely to provide the correct classification. Reported results on the classification of different data sets show that dynamic classifier selection based on MCS behaviour is an effective operation mechanism for MCSs.
机译:在模式识别领域,提出了多分类器系统(MCS)的概念作为开发高性能分类系统的一种方法。当前,MCS的常见“操作”机制是分类器输出的“组合”。最近,一些研究人员指出了“动态分类器选择”(DCS)作为一种新的运行机制的潜力。本文提出了一种基于MCS行为的DCS算法。提出的方法旨在利用MCS的行为,以便为每个测试模式选择更可能提供正确分类的分类器。关于不同数据集分类的报告结果表明,基于MCS行为的动态分类器选择是MCS的有效操作机制。

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