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Evidence Filtering

机译:证据过滤

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摘要

A novel framework named evidence filtering for processing information from multiple sensor modalities is presented. This approach is based on conditional belief notions in Dempster-Shafer (DS) evidence theory and enables one to directly process temporally and spatially distributed sensor data and infer on the ldquofrequencyrdquo characteristics of various events of interest. The method can accommodate partial and incomplete information from multiple sensor modalities during the process. Certain restrictions on the coefficients impose several challenges in the design of evidence filters suggesting that arbitrary frequency shaping is not possible. A design procedure and the analysis of nonrecursive evidence filters is presented. A threat assessment scenario is simulated and the results are presented to illustrate the applications of evidence filtering.
机译:提出了一种新颖的框架,称为证据过滤,用于处理来自多个传感器模态的信息。这种方法基于Dempster-Shafer(DS)证据理论中的条件信念概念,使人们可以直接处理时间和空间分布的传感器数据,并推断各种感兴趣事件的“频率”特性。该方法可以在过程中容纳来自多个传感器模态的部分和不完整的信息。对系数的某些限制在证据滤波器的设计中提出了一些挑战,表明不可能进行任意频率整形。提出了一种设计程序和非递归证据过滤器的分析。模拟了威胁评估方案,并给出了结果以说明证据过滤的应用。

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