Title :
Real-time collision-free path planning and tracking control of a nonholonomic mobile robot using a biologically inspired approach
Author :
Yang, Simon X. ; Yuan, Guangfeng ; Meng, Max ; Mittal, Gauri S.
Author_Institution :
Sch. of Eng., Guelph Univ., Ont., Canada
Abstract :
A biologically inspired neural network approach is proposed for real-time collision-free path planning and tracking control of a nonholonomic mobile robot in a nonstationary environment. The real-time robot trajectory with obstacle avoidance is rated by a topologically organized neural network, where the dynamics of each neuron is characterized by a shunting equation. The varying environment is represented by the dynamic activity landscape of the neural network. Where the neural activity propagation is subject to the kinematic constraint of the nonholonomic mobile robots. The real-time tracking velocities are generated by a novel neural dynamics based controller, which is based on two shunting models and the backstepping technique. Unlike the backstepping controllers that produce non-smooth velocity commands with sharp jumps, the proposed tracking controller is capable of generating smooth, continuous commands not suffering from velocity jumps. The effectiveness and efficiency of the proposed approach are demonstrated through simulation and comparison studies.
Keywords :
mobile robots; neurocontrollers; path planning; position control; robot kinematics; backstepping technique; biologically inspired neural network approach; dynamic activity landscape; kinematic constraint; neural activity propagation; neural dynamics based controller; nonholonomic mobile robot; nonsmooth velocity commands; nonstationary environment; obstacle avoidance; real-time collision-free path planning; real-time robot trajectory; real-time tracking velocities; shunting equation; smooth continuous commands; topologically organized neural network; tracking control; Backstepping; Biological control systems; Computational efficiency; Cost function; Kinematics; Mobile robots; Neural networks; Path planning; Robot control; Velocity control;
Conference_Titel :
Robotics and Automation, 2001. Proceedings 2001 ICRA. IEEE International Conference on
Print_ISBN :
0-7803-6576-3
DOI :
10.1109/ROBOT.2001.933143