DocumentCode
716903
Title
Mimicking human walking with 5-link model using HZD controller
Author
Sharbafi, Maziar Ahmad ; Seyfarth, Andre
Author_Institution
Lauflabor Locomotion Lab., Tech. Univ. of Darmstadt, Darmstadt, Germany
fYear
2015
fDate
26-30 May 2015
Firstpage
6313
Lastpage
6319
Abstract
Walking with 5-link model has been achieved by HZD (Hybrid Zero Dynamics) controller based on virtual constraints. These holonomic constraints are obtained by optimizing a set of virtual relations (e.g., Beziér polynomial) between system states which mostly do not have physical interpretations. In this paper, the virtual constraints are designed using human walking experiment data. Inspiring from human locomotion, different polynomials are extracted to mimic human joint angles patterns during walking. The virtual leg angle is the increasing variable which synchronize the joints angles and defines the virtual constraints. Simulation results show that stable locomotion with leg and upper-body behavior similar to human experiment data is achieved for a wide range of speeds and body configuration parameters. VPP (Virtual Pivot Point) concept, a significant balancing feature found in human/animal locomotion, is investigated for different gait speeds as a performance index to compare the kinetic behavior of the simulated and human walking. Hence, we present human-like posture control as an outcome of motion control achieved by HZD with human inspired virtual constraints.
Keywords
biomechanics; legged locomotion; motion control; polynomials; robot kinematics; synchronisation; 5-link model; HZD controller; VPP; body configuration parameters; gait speeds; holonomic constraints; human inspired virtual constraints; human joint angle pattern synchronization; human walking experiment data; human-animal locomotion; human-like posture control; hybrid zero dynamic controller; kinetic behavior; motion control; performance index; upper-body behavior; virtual leg angle; virtual pivot point concept; Computational modeling; Hip; Joints; Legged locomotion; Manifolds; Polynomials; Stability analysis;
fLanguage
English
Publisher
ieee
Conference_Titel
Robotics and Automation (ICRA), 2015 IEEE International Conference on
Conference_Location
Seattle, WA
Type
conf
DOI
10.1109/ICRA.2015.7140086
Filename
7140086
Link To Document