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Updated: Jun 13, 2026

Sit-to-stand-and-walk from 120% Knee Height: A Novel Approach to Assess Dynamic Postural Control Independent of Lead-limb
Published on: August 30, 2016
Tracking human position and lower body parts using Kalman and particle filters constrained by human biomechanics
Jesús Martinez del Rincon1, Dimitrios Makris, Carlos Orrite Urunuela
1Digital Imaging Research Centre, Kingston University, KT1 2EE Surrey, UK. Jesus.Martinezdelrincon@kingston.ac.uk
Abstract:
In this paper, a novel framework for visual tracking of human body parts is introduced. The approach presented demonstrates the feasibility of recovering human poses with data from a single uncalibrated camera by using a limb-tracking system based on a 2-D articulated model and a double-tracking strategy. Its key contribution is that the 2-D model is only constrained by biomechanical knowledge about human bipedal motion, instead of relying on constraints that are linked to a specific activity or camera view. These characteristics make our approach suitable for real visual surveillance applications. Experiments on a set of indoor and outdoor sequences demonstrate the effectiveness of our method on tracking human lower body parts. Moreover, a detail comparison with current tracking methods is presented.
