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Distributed sensor data fusion with binary decision trees

机译:带有二进制决策树的分布式传感器数据融合

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摘要

A distributed sensor object recognition scheme that uses object features collected by several sensors is presented. Recognition is performed by a binary decision tree generated from a training set. The scheme does not assume the availability of any probability density functions, thus it is practical for nonparametric object recognition. Simulations have been performed for Gaussian feature objects, and some of the results are presented.
机译:提出了使用多个传感器收集的对象特征的分布式传感器对象识别方案。通过从训练集生成的二进制决策树执行识别。该方案不假定任何概率密度函数的可用性,因此对于非参数对象识别是可行的。已经对高斯特征对象进行了仿真,并给出了一些结果。

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