Solving the Inverse Kinematics Problem of Multiple Redundant Manipulators with Collision Avoidance in Dynamic Environments

被引:0
作者
Liangliang Zhao
Jingdong Zhao
Hong Liu
机构
[1] Harbin Institute of Technology,
来源
Journal of Intelligent & Robotic Systems | 2021年 / 101卷
关键词
Inverse kinematics; Multiple manipulators; Collision avoidance; Dynamic obstacles;
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摘要
This article presents an approach for collision-free kinematics of multiple redundant manipulators in complex environments. The approach describes a representation of task space and joint limit constraints for redundant manipulators and handles collision-free constraints by micromanipulator dynamic model and velocity obstacles. A new algorithm based on Newton-based and first-order techniques is proposed to generate collision-free inverse kinematics solutions. The present approach is applied in simulation for the redundant manipulators in a various working environments with dynamic obstacles. The physical experiments using a Baxter robot in a various working environments with dynamic obstacles are also performed. The results demonstrate the effectiveness of the proposed approach compared with existing methods regarding working environment and computational cost.
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[11]  
Chan TF(2015)The shape control of tentacle arms Robotica 33 684-703
[12]  
Dubey RV(1994)A modal approach to hyper-redundant manipulator kinematics IEEE Trans. Robot. Autom. 10 343-354
[13]  
Assal SF(2013)A real-time motion planning algorithm for a hyper-redundant set of mechanisms Robotica 31 1327-1335
[14]  
Watanabe K(2018)The natural-ccd algorithm, a novel method to solve the inverse kinematics of hyper-redundant and soft robots Soft robotics 5 242-257
[15]  
Izumi K(2010)Global manipulation planning in robot joint space with task constraints IEEE Trans. Robot. 26 576-584
[16]  
Orin DE(2012)A multi-objective approach for the motion planning of redundant manipulators Appl. Soft Comput. 12 589-599
[17]  
Schrader WW(2012)Distributed reactive collision avoidance Auton. Robot. 32 207-226
[18]  
Colomé A(2013)Reciprocal collision avoidance with motion continuity constraints IEEE Trans. Robot. 29 899-912
[19]  
Torras C(2015)Generalized reciprocal collision avoidance Int. J. Robot. Res. 34 1501-1514
[20]  
Sreenivasan S(1987)A unified approach for motion and force control of robot manipulators: the operational space formulation IEEE J. Robot. Autom. 3 43-53