DocumentCode
2683560
Title
Reactive footstep planning for a planar spring mass hopper
Author
Arslan, Ömur ; Saranli, Uluc ; Morgül, Ömer
Author_Institution
Dept. of Electr. & Electron. Eng., Bilkent Univ., Ankara, Turkey
fYear
2009
fDate
10-15 Oct. 2009
Firstpage
160
Lastpage
166
Abstract
The main driving force behind research on legged robots has always been their potential for high performance locomotion on rough terrain and the outdoors. Nevertheless, most existing control algorithms for such robots either make rigid assumptions about their environments (e.g flat ground), or rely on kinematic planning at low speeds. Moreover, the traditional separation of planning from control often has negative impact on the robustness of the system against model uncertainty and environment noise. In this paper, we introduce a new method for dynamic, fully reactive footstep planning for a simplified planar spring-mass hopper, a frequently used model for running behaviors. Our approach is based on a careful characterization of the model dynamics and an associated deadbeat controller, used within a sequential composition framework. This yields a purely reactive controller with a very large, nearly global domain of attraction that requires no explicit replanning during execution. Finally, we use a simplified hopper in simulation to illustrate the performance of the planner under different rough terrain scenarios and show that it is extremely robust to both model uncertainty and measurement noise.
Keywords
legged locomotion; nonlinear control systems; path planning; pendulums; robot dynamics; springs (mechanical); deadbeat controller; high performance locomotion; kinematic planning; legged robots; measurement noise; model dynamics; model uncertainty; planar spring mass hopper; reactive footstep planning; rough terrain scenarios; spring-loaded inverted pendulum model; Kinematics; Legged locomotion; Morphology; Noise robustness; Robots; Robust control; Springs; Uncertainty; Vehicle dynamics; Working environment noise;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2009. IROS 2009. IEEE/RSJ International Conference on
Conference_Location
St. Louis, MO
Print_ISBN
978-1-4244-3803-7
Electronic_ISBN
978-1-4244-3804-4
Type
conf
DOI
10.1109/IROS.2009.5354354
Filename
5354354
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