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Multiple Human Tracking in RGB-D Data: A Survey
June 14, 2016 ยท The Cartographer ยท ๐ arXiv.org
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"Title-pattern auto-detect: Multiple Human Tracking in RGB-D Data: A Survey"
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Authors
Massimo Camplani, Adeline Paiement, Majid Mirmehdi, Dima Damen, Sion Hannuna, Tilo Burghardt, Lili Tao
arXiv ID
1606.04450
Category
cs.CV: Computer Vision
Citations
13
Venue
arXiv.org
Last Checked
3 days ago
Abstract
Multiple human tracking (MHT) is a fundamental task in many computer vision applications. Appearance-based approaches, primarily formulated on RGB data, are constrained and affected by problems arising from occlusions and/or illumination variations. In recent years, the arrival of cheap RGB-Depth (RGB-D) devices has {led} to many new approaches to MHT, and many of these integrate color and depth cues to improve each and every stage of the process. In this survey, we present the common processing pipeline of these methods and review their methodology based (a) on how they implement this pipeline and (b) on what role depth plays within each stage of it. We identify and introduce existing, publicly available, benchmark datasets and software resources that fuse color and depth data for MHT. Finally, we present a brief comparative evaluation of the performance of those works that have applied their methods to these datasets.
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