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Track-Oriented Evaluation of Multi-Target Tracking Without Knowing Ground Truth

机译:在不知道原始事实的情况下,以轨道为导向的多目标跟踪评估

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Evaluating the performance of multi-target tracking with respect to tracks rather than unlabeled estimated points is important and challenging. Existing approaches assume exact knowledge of the ground truth. However, this is far from the reality. This paper proposes a method to deal with the case of unknown ground truth by measuring the difference between mock tracks and the assumed targets in the measurement space. The mock tracks are generated using the tracking results (tracks) of the algorithm. The assumed (true trajectories of) targets are extracted from the observations using the prior knowledge of the target motion. The method assigns the mock tracks to the assumed targets and then calculates the metrics. To solve the important and complex assignment problem, we propose a voting method, in which the assumed targets vote for the mock tracks. The voting rule is designed based on the prior knowledge. Incorporating the prior information and the online measurements, the proposed evaluation method makes good use of the mock data method and a voting strategy. Analysis and simulation demonstrate its effectiveness.
机译:评估关于曲目的多目标跟踪的性能而不是未标记的估计点是重要的和具有挑战性的。现有方法承担了对实际真理的精确知识。然而,这远非现实。本文提出了一种通过测量模拟轨迹和测量空间中的假定目标之间的差异来处理未知地面真理的情况的方法。使用算法的跟踪结果(曲目)生成模拟轨道。使用目标运动的先验知识从观察中提取假设(真正的轨迹)目标。该方法将模拟曲目分配给假定的目标,然后计算度量标准。为了解决重要和复杂的分配问题,我们提出了一种投票方法,其中假定的目标投票给模拟轨道。投票规则是根据先前知识设计的。结合了先前的信息和在线测量,所提出的评估方法良好地利用模拟数据方法和投票策略。分析和仿真展示了其有效性。

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