DocumentCode :
3036094
Title :
Personalization and Evaluation of a Real-Time Depth-Based Full Body Tracker
Author :
Helten, Thomas ; Baak, Andreas ; Bharaj, Gaurav ; Muller, Mathias ; Seidel, Hans-Peter ; Theobalt, Christian
fYear :
2013
fDate :
June 29 2013-July 1 2013
Firstpage :
279
Lastpage :
286
Abstract :
Reconstructing a three-dimensional representation of human motion in real-time constitutes an important research topic with applications in sports sciences, human-computer-interaction, and the movie industry. In this paper, we contribute with a robust algorithm for estimating a personalized human body model from just two sequentially captured depth images that is more accurate and runs an order of magnitude faster than the current state-of-the-art procedure. Then, we employ the estimated body model to track the pose in real-time from a stream of depth images using a tracking algorithm that combines local pose optimization and a stabilizing dataBase look-up. Together, this enables accurate pose tracking that is more accurate than previous approaches. As a further contribution, we evaluate and compare our algorithm to previous work on a comprehensive benchmark dataset containing more than 15 minutes of challenging motions. This dataset comprises calibrated marker-Based motion capture data, depth data, as well as ground truth tracking results and is publicly available for research purposes.
Keywords :
image motion analysis; image reconstruction; image sequences; object tracking; optimisation; pose estimation; 3D human motion reconstruction; database look-up; depth data; human-computer-interaction; local pose optimization; marker-based motion capture data; movie industry; personalized human body model; pose tracking; real-time depth-based full body tracker evaluation; real-time depth-based full body tracker personalization; sports sciences; Computational modeling; Estimation; Optimization; Shape; Three-dimensional displays; Tracking; Vectors; depth sensors; full-body motion tracking; human shape estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
3D Vision - 3DV 2013, 2013 International Conference on
Conference_Location :
Seattle, WA
Type :
conf
DOI :
10.1109/3DV.2013.44
Filename :
6599087
Link To Document :
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