DocumentCode
2337581
Title
From path to trajectory deformation
Author
Kurniawati, Hanna ; Fraichard, Thierry
Author_Institution
Nat. Univ. of Singapore, Singapore
fYear
2007
fDate
Oct. 29 2007-Nov. 2 2007
Firstpage
159
Lastpage
164
Abstract
Path deformation is a technique that was introduced to generate robot motion wherein a path, that has been computed beforehand, is continuously deformed on-line in response to unforeseen obstacles. This paper introduces the first trajectory deformation scheme as an effort to improve path deformation. The main idea is that by incorporating the time dimension and hence information on the obstacles´ future behaviour, quite a number of situations where path deformation would fail can be handled. The trajectory deformation scheme presented operates in two steps, ie, a collision avoidance step and a connectivity maintenance step, hence its name 2-step-trajectory-deformer (2-STD). In the collision avoidance step, repulsive forces generated by the obstacles deform the trajectory so that it remains collision-free. The purpose of the connectivity maintenance step is to ensure that the deformed trajectory remains feasible, ie, that it satisfies the robot´s kinematic and/or dynamic constraints. Moreover, unlike path deformation wherein spatial deformation only takes place, 2-STD features both spatial and temporal deformation. It has been tested successfully on a planar robot with double integrator dynamics moving in dynamic environments.
Keywords
collision avoidance; deformation; path planning; robot dynamics; robot kinematics; 2-STD; 2-Step-Trajectory-Deformer; collision avoidance step; connectivity maintenance step; path deformation; repulsive forces; robot dynamic; robot kinematic; robot motion; spatial deformation; temporal deformation; trajectory deformation; Collision avoidance; Convergence; Equations; Intelligent robots; Notice of Violation; Orbital robotics; Path planning; Robot motion; Robot sensing systems; USA Councils;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2007. IROS 2007. IEEE/RSJ International Conference on
Conference_Location
San Diego, CA
Print_ISBN
978-1-4244-0912-9
Electronic_ISBN
978-1-4244-0912-9
Type
conf
DOI
10.1109/IROS.2007.4399235
Filename
4399235
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