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5 months ago

Do Different Tracking Tasks Require Different Appearance Models?

Zhongdao Wang; Hengshuang Zhao; Ya-Li Li; Shengjin Wang; Philip H.S. Torr; Luca Bertinetto

Do Different Tracking Tasks Require Different Appearance Models?

Abstract

Tracking objects of interest in a video is one of the most popular and widely applicable problems in computer vision. However, with the years, a Cambrian explosion of use cases and benchmarks has fragmented the problem in a multitude of different experimental setups. As a consequence, the literature has fragmented too, and now novel approaches proposed by the community are usually specialised to fit only one specific setup. To understand to what extent this specialisation is necessary, in this work we present UniTrack, a solution to address five different tasks within the same framework. UniTrack consists of a single and task-agnostic appearance model, which can be learned in a supervised or self-supervised fashion, and multiple ``heads'' that address individual tasks and do not require training. We show how most tracking tasks can be solved within this framework, and that the same appearance model can be successfully used to obtain results that are competitive against specialised methods for most of the tasks considered. The framework also allows us to analyse appearance models obtained with the most recent self-supervised methods, thus extending their evaluation and comparison to a larger variety of important problems.

Code Repositories

Zhongdao/UniTrack
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
multi-object-tracking-on-mot16UniTrack
IDF1: 71.8
IDs: 683
MOTA: 74.7
multi-object-tracking-on-mots20UniTrack
IDF1: 67.2
IDs: 622
sMOTSA: 68.9
pose-estimation-on-j-hmdbUniTrack_i18
Mean PCK@0.1: 58.3
Mean PCK@0.2: 80.5
pose-tracking-on-posetrack2018UniTrack
IDF1: 73.2
IDs: 6760
MOTA: 63.5
video-instance-segmentation-on-youtube-vis-1UniTrack
mask AP: 30.1
video-object-segmentation-on-davis-2017UniTrack
mIoU: 58.4
visual-object-tracking-on-otb-2015UniTrack_DCF
AUC: 0.618

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