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Fusion system based on belief functions theory and approximated belief functions for tree species recognition

机译:基于信念函数理论和近似信念函数的融合系统

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In this paper, an information fusion system for tree species recognition through leaves is proposed. This approach consists in training sub-classifiers (Random forests) with attributes extracted from leaf photos. The database is incomplete, partial and some data is conflicting. A hierarchical fusion system based on Belief functions theory allows the fusion of data provided by different sub-classifiers. Different procedures for reducing computational complexity are tested.
机译:本文提出了一种通过树叶识别树种的信息融合系统。该方法包括使用从叶子照片中提取的属性来训练子分类器(随机森林)。数据库不完整,不完整,并且某些数据有冲突。基于Belief函数理论的分层融合系统允许融合不同子分类器提供的数据。测试了减少计算复杂度的不同过程。

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