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Papers/Simple Online and Realtime Tracking with a Deep Associatio...

Simple Online and Realtime Tracking with a Deep Association Metric

Nicolai Wojke, Alex Bewley, Dietrich Paulus

2017-03-21Object TrackingPerson Re-IdentificationMultiple Object TrackingLarge-Scale Person Re-Identification3D Multi-Object TrackingVideo Instance Segmentation
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Abstract

Simple Online and Realtime Tracking (SORT) is a pragmatic approach to multiple object tracking with a focus on simple, effective algorithms. In this paper, we integrate appearance information to improve the performance of SORT. Due to this extension we are able to track objects through longer periods of occlusions, effectively reducing the number of identity switches. In spirit of the original framework we place much of the computational complexity into an offline pre-training stage where we learn a deep association metric on a large-scale person re-identification dataset. During online application, we establish measurement-to-track associations using nearest neighbor queries in visual appearance space. Experimental evaluation shows that our extensions reduce the number of identity switches by 45%, achieving overall competitive performance at high frame rates.

Results

TaskDatasetMetricValueModel
Multi-Object TrackingWaymo Open DatasetMOTA/L20.7329CTRL_FSD_TTA
Object TrackingQuadTrackHOTA21.16DeepSORT
Object TrackingWaymo Open DatasetMOTA/L20.7329CTRL_FSD_TTA
3D Multi-Object TrackingWaymo Open DatasetMOTA/L20.7329CTRL_FSD_TTA
Video Instance SegmentationYouTube-VIS validationAP5031.3DeepSORT
Video Instance SegmentationYouTube-VIS validationmask AP27.8DeepSORT

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