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PMHT: problems and some solutions

机译:PMHT:问题和一些解决方案

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摘要

The probabilistic multihypothesis tracker (PMHT) is a target tracking algorithm of considerable theoretical elegance. In practice, its performance turns out to be at best similar to that of the probabilistic data association filter (PDAF); and since the implementation of the PDAF is less intense numerically the PMHT has been having a hard time finding acceptance. The PMHT's problems of nonadaptivity, narcissism, and over-hospitality to clutter are elicited in this work. The PMHT's main selling-point is its flexible and easily modifiable model, which we use to develop the "homothetic" PMHT; maneuver-based PMHTs, including those with separate and joint homothetic measurement models; a modified PMHT whose measurement/target association model is more similar to that of the PDAF; and PMHTs with eccentric and/or estimated measurement models. Ideally, "bottom line" would be a version of the PMHT with clear advantages over existing trackers. If the goal is of an accurate (in terms of mean square error (MSE)) track, then there are a number of versions for which this is available.
机译:概率多录像机跟踪器(PMHT)是具有相当大的理论优雅的目标跟踪算法。在实践中,其性能结果与概率数据关联滤波器(PDAF)的表现最多类似;由于PDAF的实现在数量上不那么激烈,因此PMHT一直存在困难的时间找到接受。在这项工作中引出了PMHT非爱,自恋和过度款待的问题。 PMHT的主要销售点是其灵活且易于修改的模型,我们用来发展“同性恋”PMHT;基于机动的PMHT,包括具有单独和联合同性性测量模型的PMHT;其测量/目标关联模型更类似于PDAF的修改后的PMHT;和偏心和/或估计测量模型的PMHT。理想情况下,“底线”将是PMHT的版本,具有优于现有跟踪器的优势。如果目标是准确的(根据均方错误(MSE))跟踪,那么有许多版本可用。

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