DOI QR코드

DOI QR Code

무인잠수정 제어시스템을 위한 네트워크 전송지연 및 패킷분실 보상기법

Compensating Transmission Delay and Packet Loss in Networked Control System for Unmanned Underwater Vehicle

  • 투고 : 2011.04.15
  • 심사 : 2011.05.25
  • 발행 : 2011.06.30

초록

Transmission delay and packet loss induced by a communication network can degrade the control performance and, even make the system unstable. This paper presents a method for compensating transmission delay and packet loss in a networked control system for unmanned underwater vehicle. The proposed method is based on Lagrange interpolation in order to satisfy the requirements of simplicity and model-independency. In this work, the lost/delayed data are estimated in real time by only using the past data without requiring any mathematical model of the controlled system. Consequently, the proposed method can be implemented independent of the controlled system, and also it can achieve fast and accurate compensation performance. The performance of the proposed technique is evaluated by numerical simulations with an unmanned underwater vehicle.

키워드

참고문헌

  1. W. Zhang, M. S. Branicky, and S. N. Phillips, "Stability of netwoked control systems", IEEE Cont. Syst. Mag., Vol.21, No.1, pp. 84-99, Feb. 2001. https://doi.org/10.1109/37.898794
  2. Y. Halevi and A. Ray, "Integrated communication and control systems: Part I-analysis", J. Dyna. Syst., Meas. Cont., Vol. 110, pp. 367-373, Dec. 1988. https://doi.org/10.1115/1.3152698
  3. J. Nilsson, "Real-time control systems with delays", Ph.D. Dissertation, Dept. Automatic Control, Lund Institute of Technology., Lund, Sweden, Jan. 1998.
  4. G. C. Walsh, H. Ye, and L. Bushnell, "Stability analysis of networked control systems", Proc. Amer. Cont. Conf., San Diego, CA, pp. 2876-2880, Jun. 1999.
  5. J. Nilsson, B. Bernhardsson, and B. Wittenmark, "Stochastic analysis and control of real-time systems with random time delays", Automatica, Vol.34, No.5, pp. 57-64, 1998. https://doi.org/10.1016/S0005-1098(97)00170-2
  6. H. Shousong and Z. Qixin, "Stochastic optimal control and analysis of stability of networked control systems with long delay", Automatica, Vol.39, No.11, pp. 1877-1884, 2003. https://doi.org/10.1016/S0005-1098(03)00196-1
  7. G. P. Liu, J. X. Mu, D. Rees, and S. C. Chai, "Design and stability analysis of networked control systems with random communication time delay using the modified MPC", Int. J. Cont., Vol.79, No.4, pp. 288-297, 2006. https://doi.org/10.1080/00207170500533288
  8. Y. L. Wang and G. H. Yang, "Control of networked control systems with time delay and packet disordering", IET Control Theory, Vol.1, No.5, pp. 1344-1354, 2007. https://doi.org/10.1049/iet-cta:20060489
  9. D. Yue, Q. L. Han, and J. Lam, "Network-based robust control of systems with uncertainty", Automatica, Vol.41, No.6, pp. 999-1007, 2005. https://doi.org/10.1016/j.automatica.2004.12.011
  10. 박랑은, 황은주, 이희진, 박민용, "퍼지 게인 스케줄링을 이용한 자율 무인잠수정의 자세 제어", 제어.로봇.시스템학회 논문지, Vol.16, No.6, pp. 592-600, 2010.
  11. S. C. Chapra and R. P. Canale, Numerical Methods for Engineers, McGrawHill, 2006.
  12. D. Enns, D. Bugajski, R. Hendrick, and G. Stein, "Dynamic inversion: an evolving methodology for flight control design", Int. J. Cont., Vol.59, No.1, pp. 71-91, 1994. https://doi.org/10.1080/00207179408923070
  13. J. Georgie, and J. Valasek, "Evaluation of longitudinal desired dynamics for dynamic-inversion controlled generic reentry vehicles", J. Guid. Cont. Dyna, Vol.26, No.5, pp. 811-819, 2003. https://doi.org/10.2514/2.5116