Title :
Enveloping multi-pocket obstacles with hexagonal metamorphic robots
Author :
Walter, Jennifer E. ; Brooks, Mary E. ; Little, David E. ; Amato, Nancy M.
Author_Institution :
Vassar Coll., Poughkeepsie, NY, USA
fDate :
26 April-1 May 2004
Abstract :
The problem addressed is reconfiguration planning for a metamorphic robotic system composed of any number of hexagonal robots when a single obstacle with multiple indentations or "pockets" is embedded in the goal environment. We extend our earlier work on filling a single pocket in an obstacle to the case where the obstacle surface may contain multiple pockets. The planning phase of our algorithm first determines whether the obstacle pockets provide sufficient clearance for module movement, i.e., whether the obstacle is "admissible". In this paper, we present algorithms that sequentially order individual pockets and order module placement inside each pocket. These algorithms ensure that every cell in each pocket is filled and that module deadlock and collision do not occur during reconfiguration. This paper also provides a complete overview of the planning stage that is executed prior to reconfiguration and presents a distributed reconfiguration schema for filling more than one obstacle pocket concurrently, followed by the envelopment of the entire obstacle. Lastly, we present examples of obstacles with multiple pockets that were successfully filled using our distributed reconfiguration simulator.
Keywords :
collision avoidance; mobile robots; metamorphic robotic system; mobile robots; multipocket obstacles; reconfiguration planning; Control systems; Educational institutions; Filling; Lattices; Mobile robots; Motion planning; Robot control; Robot kinematics; Solids; System recovery;
Conference_Titel :
Robotics and Automation, 2004. Proceedings. ICRA '04. 2004 IEEE International Conference on
Print_ISBN :
0-7803-8232-3
DOI :
10.1109/ROBOT.2004.1307389