Constraint-based dynamics simulator for humanoid robots with shock absorbing mechanisms

Симулятор динамики на основе ограничений для гуманоидных роботов с амортизирующими механизмами
Shin’ichiro Nakaoka, Shizuko Hattori, Fumio Kanehiro, Shuuji Kajita, Hirohisa Hirukawa
2007-10-01

Gauss-Seidel methodconstraint-based dynamics simulationcontact force solverhumanoid robotsvirtual spring-damper joints
We propose a simulation system that achieves realistic and efficient simulations of humanoid robots. This paper focuses on a constraint-based contact force solver and virtual spring-damper joints from among the components of the system. The contact force solver can accurately simulate contacts between rigid bodies including articulated rigid bodies. LCP-like formulation of constraint conditions is solved by an iterative calculation method that extends the Gauss-Seidel method. This paper clarifies how to integrate existing methods to implement a robust and efficient solver. Virtual spring-damper joints are proposed to simulate a shock absorbing mechanism that many biped humanoid robots have in their feet to increase the stability of walking motion. The combination of the rigid contact model and the elastic virtual joints can improve the accuracy of the simulation. The simulation system was verified by experiments using humanoid robot HRP-2, and the results shows the validity of the system.
1
A humanoid-robot simulator combines a constraint-based contact force solver with virtual spring-damper joints for realistic and efficient dynamics simulation.
2
Combining rigid contact modeling with elastic virtual joints improves simulation accuracy.
3
Experiments with the HRP-2 humanoid robot validated the proposed simulation system.
4
The contact solver accurately models contacts between rigid bodies, including articulated rigid bodies, using an iterative Gauss-Seidel extension for LCP-like constraints.
5
Virtual spring-damper joints represent shock-absorbing foot mechanisms in biped humanoids, supporting more stable walking-motion simulation.

humanoid robots with foot shock-absorbing mechanisms, exemplified by HRP-2

realistic and efficient simulation of rigid-body contacts and shock-absorbing foot joints for stable walking motion

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2007-10-01
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Authors
Shin’ichiro Nakaoka
Shizuko Hattori
Fumio Kanehiro
Shuuji Kajita
Hirohisa Hirukawa
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