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Using the conflict in Dempster-Shafer evidence theory as a rejection criterion in classifier output combination for 3D human action recognition

机译:使用Dempster-Shafer证据理论中的冲突作为3D人体动作识别的分类器输出组合中的拒绝标准

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In this paper, we propose a comprehensive solution to 3D human action recognition including feature extraction, classification, and multiple classifier combination. We effectively present two feature extraction methods, four different types of well-known classifiers, and four multiple classifier combination strategies including a specially designed belief based method. In order to enhance the recognition accuracy, we propose a new rejection criterion based on the conflict from the information sources: the classifier outputs. We test our method on the MSRAction 3D dataset. Discarding examples using the conflict based criterion shows superior results than other combination approaches. Moreover this criterion allows choosing a tradeoff between the performance and rejection rate. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种3D人体动作识别的全面解决方案,包括特征提取,分类和多分类器组合。我们有效地提出了两种特征提取方法,四种不同类型的知名分类器以及四种多重分类器组合策略,其中包括一种特殊设计的基于信念的方法。为了提高识别的准确性,我们基于来自信息源的冲突提出了一种新的拒绝标准:分类器输出。我们在MSRAction 3D数据集上测试我们的方法。使用基于冲突的准则丢弃示例显示出比其他组合方法更好的结果。此外,该标准允许在性能和拒绝率之间进行权衡。 (C)2016 Elsevier B.V.保留所有权利。

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