DocumentCode
3172300
Title
Randomised Rough-Terrain Robot Motion Planning
Author
Ettlin, Alan ; Bleuler, Hannes
Author_Institution
Inst. of Electron., Appl. Sci. Univ., Horw
fYear
2006
fDate
9-15 Oct. 2006
Firstpage
5798
Lastpage
5803
Abstract
A fundamental property of rough-terrain motion planning is that each configuration of the robot on the terrain can be assigned a characteristic navigational difficulty based on the terrain topography and physical properties of the underground. This measure is computed in an application-dependent manner based on the properties of the robot and terrain model employed. In this work we propose a motion planner based on rapidly exploring random trees (RRTs) which takes into consideration the characteristics of the underground. In the suggested solution, the randomised expansion of the RRTs is biased towards regions of low navigational difficulty. The motion planner generates trajectories which follow areas of easy navigation and only deviates to harder regions where inevitable. In particular, the maximal difficulty on the path is approximately minimised. For single-query motion planning tasks, bidirectional RRTs have proven to be effective in rapidly computing a path between the initial and goal configurations. To deal with complex distributions of the terrain characteristics, this concept has been extended. Rooted at randomly chosen configurations, a number of additional RRTs is grown. While the algorithm discussed is intended for rough-terrain motion planning and demonstrated in this context, it can easily be adapted to other domains where a characteristic measure for the desirability of attaining individual configurations can be defined
Keywords
mobile robots; path planning; randomised algorithms; trees (mathematics); navigational difficulty; randomised rough-terrain robot motion planning; rapidly exploring random trees; single-query motion planning; terrain topography; Cost function; Extraterrestrial measurements; Fuzzy logic; Intelligent robots; Legged locomotion; Motion planning; Navigation; Robot motion; Surfaces; Technology planning;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2006 IEEE/RSJ International Conference on
Conference_Location
Beijing
Print_ISBN
1-4244-0258-1
Electronic_ISBN
1-4244-0259-X
Type
conf
DOI
10.1109/IROS.2006.282390
Filename
4058388
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