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3 months ago

FairMOT: On the Fairness of Detection and Re-Identification in Multiple Object Tracking

Yifu Zhang Chunyu Wang Xinggang Wang Wenjun Zeng Wenyu Liu

FairMOT: On the Fairness of Detection and Re-Identification in Multiple Object Tracking

Abstract

Multi-object tracking (MOT) is an important problem in computer vision which has a wide range of applications. Formulating MOT as multi-task learning of object detection and re-ID in a single network is appealing since it allows joint optimization of the two tasks and enjoys high computation efficiency. However, we find that the two tasks tend to compete with each other which need to be carefully addressed. In particular, previous works usually treat re-ID as a secondary task whose accuracy is heavily affected by the primary detection task. As a result, the network is biased to the primary detection task which is not fair to the re-ID task. To solve the problem, we present a simple yet effective approach termed as FairMOT based on the anchor-free object detection architecture CenterNet. Note that it is not a naive combination of CenterNet and re-ID. Instead, we present a bunch of detailed designs which are critical to achieve good tracking results by thorough empirical studies. The resulting approach achieves high accuracy for both detection and tracking. The approach outperforms the state-of-the-art methods by a large margin on several public datasets. The source code and pre-trained models are released at https://github.com/ifzhang/FairMOT.

Code Repositories

ydhcg-bobo/stcmot
pytorch
Mentioned in GitHub
ankitsinghsuraj/mot20
pytorch
Mentioned in GitHub
IMBINGO95/FairMOT
pytorch
Mentioned in GitHub
nolanzzz/MTMCT
pytorch
Mentioned in GitHub
harsh2912/people-tracking
pytorch
Mentioned in GitHub
15534081591/FairMOT
mindspore
Mentioned in GitHub
nemonameless/fairmot
pytorch
Mentioned in GitHub
dhu-mmct/dhu-mmct
pytorch
Mentioned in GitHub
oljikeboost/PlayerTracking
pytorch
Mentioned in GitHub
zengwbz/Face-Tracking-usingFairMOT
pytorch
Mentioned in GitHub
gsan2/FairMOT
pytorch
Mentioned in GitHub
ifzhang/FairMOT
Official
pytorch
Mentioned in GitHub
HoganZhang/FairMOT
pytorch
Mentioned in GitHub
FlorentijnD/FairMOT
pytorch
Mentioned in GitHub
microsoft/FairMOT
pytorch
Mentioned in GitHub
microsoft/UDA
pytorch
Mentioned in GitHub
Bangbangbanana/fairmot_mindspore
mindspore
Mentioned in GitHub
cds-mipt/cds-tracking
pytorch
Mentioned in GitHub
lilin19890401/FairMOT
pytorch
Mentioned in GitHub
dingwoai/FairMOT-BDD100K
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
multi-object-tracking-on-2dmot15-1FairMOT
MOTA: 60.6
multi-object-tracking-on-dancetrackFairMOT
AssA: 23.8
DetA: 66.7
HOTA: 39.7
IDF1: 40.8
MOTA: 82.2
multi-object-tracking-on-hieveFairMOT
MOTA: 35.0
multi-object-tracking-on-mot16FairMOT
MOTA: 74.9
multi-object-tracking-on-mot17FairMOT
IDF1: 72.3
MOTA: 73.7
multi-object-tracking-on-mot20-1FairMOT
IDF1: 67.3
MOTA: 61.8
multi-object-tracking-on-sportsmotFairMOT
AssA: 34.7
DetA: 70.2
HOTA: 49.3
IDF1: 53.5
MOTA: 86.4
multiple-object-tracking-on-sportsmotFairMOT
AssA: 34.7
DetA: 70.2
HOTA: 49.3
IDF1: 53.5
MOTA: 86.4

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