Probabilistic Handling of Merged Detections in Multi Target Tracking

T. Stephan, M. Grinberg
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引用次数: 3

Abstract

In this contribution we present a method for handling merged detections in video-based Multi-Target-Tracking applications. Merged detections occur when two or more objects evoke one joint detection, i.e. when measurements stemming from multiple objects cannot be resolved by the sensor. In video-based applications this is the case when the segmentation fails to separate blobs belonging to different objects. The proposed approach is based on the specification of candidate merge events and resulting data association events. We propose a concept which allows recognition of the merge events and a correct track update in case of identified merges. This is done by generating artificial (virtual) measurements (measurement reconstruction) through decomposition of respective detections. The globally optimal solution is achieved by weighting different candidate hypotheses according to their a-posteriori probabilities.
多目标跟踪中合并检测的概率处理
在这篇文章中,我们提出了一种在基于视频的多目标跟踪应用中处理合并检测的方法。当两个或多个物体引起一个联合检测时,即当来自多个物体的测量不能由传感器解决时,合并检测就会发生。在基于视频的应用程序中,当分割无法分离属于不同对象的blob时,就会出现这种情况。该方法基于候选合并事件和结果数据关联事件的规范。我们提出了一个概念,允许识别合并事件,并在确定合并的情况下进行正确的跟踪更新。这是通过分解各自的检测生成人工(虚拟)测量(测量重建)来完成的。通过对不同候选假设的后验概率进行加权,得到全局最优解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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