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Global Data Association for Multi-Object Tracking using Network Flows
The Global Data Association for Multi-Object Tracking using Network Flows dataset is used to evaluate the performance of multi-object tracking algorithms. -
Tracking-by-Animation
The proposed Tracking-by-Animation (TBA) framework achieves unsupervised end-to-end learning of MOT tasks. -
MOT Challenge
Object detectors are vital to many modern computer vision applications. However, even state-of-the-art object detectors exhibit inconsistent behavior when the input undergoes... -
DanceTrack
Many Multi-Object Tracking (MOT) approaches exploit motion information to associate all the detected objects across frames. However, many methods that rely on filtering-based... -
Cars dataset
The Cars dataset is a multi-object multi-camera network application. -
BDD100K MOTS
The BDD100K MOTS dataset is a subset of the BDD100K dataset, containing 154 videos with annotation for training and validation, and 37 videos for testing. -
MOT16, MOT17, and MOT20 datasets
The MOT16, MOT17, and MOT20 datasets are used for evaluating the proposed One More Check (OMC) tracker. -
CLEAR MOT metrics
The CLEAR MOT metrics are used to evaluate the performance of multi-object tracking algorithms. -
MOT17 and MOT20
Object permanence is the concept that objects in a physical world continue to exist despite the observers inability to sense them. This can result in temporally unstable... -
MOTS Dataset
The MOTS dataset is a variant of the MOT dataset, containing 4 training sequences and 4 test sequences. -
MOT16 and MOT17 Datasets
The MOT16 and MOT17 datasets are used for evaluating the performance of multi-object tracking algorithms. -
TraDeS: A Novel Online Joint Detection and Tracking Model
The TraDeS tracker is a novel online joint detection and tracking model that exploits tracking clues to assist detection and in return benefits tracking. -
Parallel Domain (PD)
A synthetic dataset for multi-object tracking, providing ground truth annotations for invisible objects.