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Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Schwarz, L.; Mateus, D.; Navab, N.
Titel:
Multiple-Activity Human Body Tracking in Unconstrained Environments
Abstract:
We propose a method for human full-body pose tracking from measurements of wearable inertial sensors. Since the data provided by such sensors is sparse, noisy and often ambiguous, we use a compound prior model of feasible human poses to constrain the tracking problem. Our model consists of several low-dimensional, activity-specifi c motion models and an efficient, sampling-based activity switching mechanism. We restrict the search space for pose tracking by means of manifold learning. Together w...     »
Stichworte:
CAMPComputerVision,CAMP,WearableSensors
Zeitschriftentitel:
VI Conference on Articulated Motion and Deformable Objects (AMDO)
Jahr:
2010
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