Extending Dempster Shafer method by multilayer decision template in classifier fusion

Mehdi Salkhordeh Haghighi, Abedin Vahedian, H. Yazdi
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引用次数: 2

Abstract

In this paper, a new classifier fusion method is introduced based on a decision template structure as an extension to Dempster Shafer method. It employs multilayer neural networks as base classifiers. The idea relies on the fact that in a multilayer neural network, behavior of each layer can be a guide for modeling decision-making process. The new decision template based method constructs decision template for each layer of the neural networks including all hidden layers such that a complete model of the base classifiers decision making process is built. In the combiner part, a new strategy based on extension to Dempster Shafer method is introduced. Efficiency of this method is compared with some known benchmark datasets.
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基于多层决策模板的Dempster Shafer方法在分类器融合中的扩展
本文提出了一种基于决策模板结构的分类器融合方法,作为Dempster Shafer方法的扩展。它采用多层神经网络作为基本分类器。这个想法依赖于这样一个事实,即在多层神经网络中,每层的行为可以作为建模决策过程的指导。基于决策模板的方法为神经网络的每一层(包括所有隐层)构建决策模板,从而建立了一个完整的基分类器决策过程模型。在组合部分,介绍了一种基于Dempster Shafer方法扩展的新策略。将该方法与一些已知的基准数据集进行了效率比较。
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