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Performance evaluation of fuzzy-based fusion rules for tracking applications

机译:基于模糊融合规则的跟踪应用性能评估

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The objective of this paper is to present and to evaluate the performance of particular fusion rules based on fuzzy T-Conorm/T-Norm operators for two tracking applications: 1) tracking object's type changes, supporting the process of objects' identification (e.g., fighter against cargo, friendly aircraft against hostile ones), which, consequently is essential for improving the quality of generalised data association for targets' tracking; 2) alarms' identification and prioritisation in terms of degree of danger relating to a set of a priori defined, out of the ordinary dangerous directions. The aim is to present and demonstrate the ability of these rules to assure coherent and stable way for identification and to improve decision-making process in a temporal way. A comparison with performance of Dezert-Smarandache Theory-based Proportional Conflict Redistribution rule no. 5 and Dempster's rule is also provided.
机译:本文的目的是针对两种跟踪应用提出并评估基于模糊T-Conorm / T-Norm运算符的特定融合规则的性能:1)跟踪对象的类型变化,支持对象的识别过程(例如,对抗货物的战斗机,对抗敌对飞机的友好飞机),因此对于提高用于跟踪目标的通用数据关联的质量至关重要; 2)在与普通危险指示不同的范围内,根据与一组先验相关的危险程度,警报的识别和优先级排序。目的是展示和证明这些规则的能力,以确保采用连贯和稳定的方式进行识别,并以时间方式改进决策过程。与基于Dezert-Smarandache理论的比例冲突重新分配规则no。 5,同时提供了Dempster规则。

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