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A Novel Performance Evaluation Methodology for Single-Target Trackers

机译:一种用于单目标跟踪器的新型性能评估方法

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This paper addresses the problem of single-target tracker performance evaluation. We consider the performance measures, the dataset and the evaluation system to be the most important components of tracker evaluation and propose requirements for each of them. The requirements are the basis of a new evaluation methodology that aims at a simple and easily interpretable tracker comparison. The ranking-based methodology addresses tracker equivalence in terms of statistical significance and practical differences. A fully-annotated dataset with per-frame annotations with several visual attributes is introduced. The diversity of its visual properties is maximized in a novel way by clustering a large number of videos according to their visual attributes. This makes it the most sophistically constructed and annotated dataset to date. A multi-platform evaluation system allowing easy integration of third-party trackers is presented as well. The proposed evaluation methodology was tested on the VOT2014 challenge on the new dataset and 38 trackers, making it the largest benchmark to date. Most of the tested trackers are indeed state-of-the-art since they outperform the standard baselines, resulting in a highly-challenging benchmark. An exhaustive analysis of the dataset from the perspective of tracking difficulty is carried out. To facilitate tracker comparison a new performance visualization technique is proposed.
机译:本文解决了单目标跟踪器性能评估的问题。我们认为性能指标,数据集和评估系统是跟踪器评估的最重要组成部分,并针对每一项提出了要求。这些要求是新评估方法的基础,该评估方法旨在进行简单且易于解释的跟踪器比较。基于排名的方法论在统计意义和实际差异方面解决了跟踪器的等效问题。引入了具有每帧注释的完全注释数据集,该注释具有多个视觉属性。通过根据视频的视觉属性对大量视频进行聚类,可以以新颖的方式最大化其视觉属性的多样性。这使它成为迄今为止最复杂的构造和注释数据集。还提出了一种多平台评估系统,该系统可轻松集成第三方跟踪器。拟议的评估方法已在VOT2014挑战赛的新数据集和38个跟踪器上进行了测试,使其成为迄今为止最大的基准测试。实际上,大多数经过测试的跟踪器确实是最先进的,因为它们的性能优于标准基准,从而产生了极具挑战性的基准。从跟踪难度的角度对数据集进行了详尽的分析。为了促进跟踪器比较,提出了一种新的性能可视化技术。

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