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Distributed object recognition using fuzzy relational inference logic

机译:基于模糊关系推理的分布式物体识别

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Abstract: This paper describes a system which uses fuzzy relational inference logic (an implementation of Dempster-Schafer evidential reasoning) to combine identity estimates derived from a network of distributed sensing nodes. The temporal association is mediated through the use of a multi-target tracking system built around a decentralized Kalman filter, and different combination rules are applied for the cases of consistent or conflicting evidence. Comparisons are drawn with approaches based on the explicit computation of identity probability estimates and their combination. The availability of good estimates of target identity can be used to resolve some of the basic data association ambiguities in the multi-target tracking system. This paper reviews some background material in data fusion. Then describes the vision component of the decentralized data fusion test-bed which has been used as the basis for the system considered here. The basic identity fusion algorithm is then presented, and a comparison drawn with an alternative, Bayesian approach. The possible extension of the system to include neural network based target classification is also considered. !19
机译:摘要:本文描述了一种系统,该系统使用模糊关系推理逻辑(Dempster-Schafer证据推理的一种实现)来组合从分布式传感节点网络得出的身份估计。时间关联是通过使用围绕分散式卡尔曼滤波器构建的多目标跟踪系统来进行调解的,对于一致或矛盾的证据,应采用不同的组合规则。使用基于身份概率估计值及其组合的显式计算的方法进行比较。对目标身份的良好估计的可用性可用于解决多目标跟踪系统中的一些基本数据关联歧义。本文回顾了数据融合的一些背景材料。然后描述分散数据融合测试平台的视觉组件,该组件已用作此处考虑的系统的基础。然后介绍了基本的身份融合算法,并使用另一种贝叶斯方法进行了比较。还考虑了系统的可能扩展以包括基于神经网络的目标分类。 !19

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