Robust Output-Feedback Formation Control Design for Nonholonomic Mobile Robot (NMRs)

被引:6
作者
Yousuf, Bilal M. [1 ]
机构
[1] NUST, Pakistan Navy Engn Coll, Dept Elect & Power Engn, Karachi, Pakistan
关键词
Nonholonomic mobile robots; Robust control; Integral terminal sliding mode control; Stabilization; Tracking; Formation control; Graph theory; High-gain observer; Lyapunov analysis; TRACKING;
D O I
10.1017/S026357471800142X
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
This paper addresses the systematic approach to design formation control for kinematic model of unicycle-type nonholonomic mobile robots. These robots are difficult to stabilize and control due to their nonintegrable constraints. The difficulty of control increases when there is a requirement to control a cluster of nonholonomic mobile robots in specific formation. In this paper, the design of the control scheme is presented in a three-step process. First, a robust state-feedback point-to-point stabilization control is designed using sliding mode control. In the second step, the controller is modified so as to address the tracking problem for time-varying reference trajectories. The proposed control scheme is shown to provide the desired robustness properties in the presence of the parameter variation, in the region of interest. Finally, in third step, tracking problem of a single nonholonomic mobile robot extends to formation control for a group of mobile robots in the leader-follower scenario using integral terminal- based sliding mode control augmented with stabilizing control. Starting with the transformation of the mathematical model of robots, the proposed controller ensures that the robots maintain a constant distance between each other to avoid collision. The main problem with the proposed controller is that it requires all states specially velocities. Therefore, the state-feedback control scheme is then extended to output feedback by incorporating a highgain observer. With the help of Lyapunov analysis and appropriate simulations, it is shown that the proposed output-feedback control scheme achieves the required control objectives. Furthermore, the closed loop system trajectories reach to desired equilibrium point in finite time while maintaining the special pattern.
引用
收藏
页码:1033 / 1056
页数:24
相关论文
共 12 条
  • [1] Output Feedback Control For Trajectory Tracking Of Wheeled Mobile Robot
    Asif, Muhammad
    Memon, Attaullah Y.
    Junaid Khan, Muhammad
    [J]. INTELLIGENT AUTOMATION AND SOFT COMPUTING, 2016, 22 (01) : 75 - 87
  • [2] Astolfi A., 2016, IEEE T IND ELECTRON, V58, P182
  • [3] Cao K., 2009, JOINT 48 IEEE C DEC
  • [4] Formation Control Strategy for Nonholonomic Intelligent Vehicles Based on Virtual Structure and Consensus Approach
    Dong, Longfei
    Chen, Yangzhou
    Qu, Xiaojun
    [J]. GREEN INTELLIGENT TRANSPORTATION SYSTEM AND SAFETY, 2016, 138 : 415 - 424
  • [5] Gao F., 2015, WSEAS T CIRCUITS SYS, V14, P229
  • [6] A velocity observer design for tracking task-based motions of unicycle type mobile robots
    Jarzebowska, Elzbieta
    [J]. COMMUNICATIONS IN NONLINEAR SCIENCE AND NUMERICAL SIMULATION, 2011, 16 (05): : 2301 - 2307
  • [7] Lee JH, 2009, INT J CONTROL AUTOM, V7, P429, DOI [10.1007/S12555-009-0312-7, 10.1007/s12555-009-0312-7]
  • [8] Lefeber E, 2001, IEEE INT CONF ROBOT, P2084, DOI 10.1109/ROBOT.2001.932914
  • [9] Leader-follower formation control of nonholonomic mobile robots based on a bioinspired neurodynamic based approach
    Peng, Zhaoxia
    Wen, Guoguang
    Rahmani, Ahmed
    Yu, Yongguang
    [J]. ROBOTICS AND AUTONOMOUS SYSTEMS, 2013, 61 (09) : 988 - 996
  • [10] Shen DB, 2011, CHIN CONTR CONF, P4860