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Uncorrelated-Track Classification, Characterization, and Prioritization Using Admissible Regions and Bayesian Inference

机译:使用可允许区域和贝叶斯推断的不相关轨道分类,表征和优先级

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摘要

This paper introduces and discusses a method to rigorously classify and prioritize uncorrelated tracks using Bayesian inference and admissible regions. A detailed derivation and discussion of the methodology are given, followed by a generalized definition of prioritization parameters. Several example prioritization parameters, including time left to detect, zero-effort miss, and effective albedo-area, are motivated and given. A number of illustrative applications with optical uncorrelated tracks are examined to demonstrate information that can be extracted from each observation. Finally, the information extracted from each uncorrelated track is then compared and prioritization of subsequent sensor-asset measurements discussed.
机译:本文介绍并讨论了一种使用贝叶斯推断和可容许区域对不相关轨迹进行严格分类和优先级排序的方法。给出了对该方法的详细推导和讨论,然后给出了优先级参数的广义定义。激励并给出了几个示例优先级排序参数,包括剩余的检测时间,零努力遗漏和有效的反照率区域。研究了具有光学不相关轨迹的许多示例性应用程序,以演示可以从每个观察中提取的信息。最后,将从每个不相关的轨道中提取的信息进行比较,并对随后的传感器资产测量的优先级进行讨论。

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