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Efficient Path Planning of a High DOF Multibody Robotic System using Adaptive RRT

Dong‐Hyung Kim, Younsung Choi, Rui-Jun Yan, Luping Luo, Jiyeong Lee, Chang-Soo Han

发表年份
2015
引用次数
2
访问权限
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摘要

This paper proposes an adaptive RRT (Rapidly-exploring Random Tree) for path planning of high DOF multibody robotic system. For an efficient path planning in high-dimensional configuration space, the proposed algorithm adaptively selects the robot bodies depending on the complexity of path planning. Then, the RRT grows only using the DOFs corresponding with the selected bodies. Since the RRT is extended in the configuration space with adaptive dimensionality, the RRT can grow in the lower dimensional configuration space. Thus the adaptive RRT method executes a faster path planning and smaller DOF for a robot. We implement our algorithm for path planning of 19 DOF robot, AMIRO. The results from our simulations show that the adaptive RRT-based path planner is more efficient than the basic RRT-based path planner.

关键词

Motion planningPath (computing)Random treeConfiguration spacePlannerAny-angle path planningComputer scienceRobotCurse of dimensionalityControl theory (sociology)

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