DocumentCode
3397861
Title
Complete analytical inverse kinematics for NAO
Author
Kofinas, Nikos ; Orfanoudakis, Emmanouil ; Lagoudakis, Michail G.
Author_Institution
Dept. of Electron. & Comput. Eng., Tech. Univ. of Crete, Chania, Greece
fYear
2013
fDate
24-24 April 2013
Firstpage
1
Lastpage
6
Abstract
The design of complex dynamic motions for humanoid robots is achievable only through the use of robot kinematics. In this paper, we study the problems of forward and inverse kinematics for the Aldebaran NAO humanoid robot and present a complete, exact, analytical solution to both problems, including a software library implementation for realtime onboard execution. The forward kinematics allow NAO developers to map any configuration of the robot from its own joint space to the three-dimensional physical space, whereas the inverse kinematics provide closed-form solutions to finding joint configurations that drive the end effectors of the robot to desired target positions in the three-dimensional physical space. The proposed solution was made feasible through a decomposition into five independent problems (head, two arms, two legs), the use of the Denavit-Hartenberg method, and the analytical solution of a non-linear system of equations. The main advantage of the proposed inverse kinematics solution compared to existing approaches is its accuracy, its efficiency, and the elimination of singularities. In addition, we suggest a generic guideline for solving the inverse kinematics problem for other humanoid robots. The implemented, freely-available, NAO kinematics library, which additionally offers center-of-mass calculations, is demonstrated in two motion design tasks: basic center-of-mass balancing and pointing to the ball.
Keywords
end effectors; humanoid robots; manipulator dynamics; manipulator kinematics; Aldebaran NAO humanoid robot dynamic motions; Denavit-Hartenberg method; analytical inverse kinematics; end effectors; forward kinematics; nonlinear system; robot kinematics; software library implementation; Equations; Joints; Kinematics; Legged locomotion; Libraries; Mathematical model;
fLanguage
English
Publisher
ieee
Conference_Titel
Autonomous Robot Systems (Robotica), 2013 13th International Conference on
Conference_Location
Lisbon
Print_ISBN
978-1-4799-1246-9
Type
conf
DOI
10.1109/Robotica.2013.6623524
Filename
6623524
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