Modeling and Analysis of Burst Switching for Wireless Packet Data

무선 패킷 데이터를 위한 Burst switching의 모델링 및 분석

  • Park, Kyoung-In (Department of Industrial Engineering, Korea Advanced Institute of Science and Technology) ;
  • Lee, Chae Young (Department of Industrial Engineering, Korea Advanced Institute of Science and Technology)
  • 박경인 (한국과학기술원 산업공학과) ;
  • 이채영 (한국과학기술원 산업공학과)
  • Published : 2002.06.30

Abstract

The third generation mobile communication needs to provide multimedia service with increased data rates. Thus an efficient allocation of radio and network resources is very important. This paper models the 'burst switching' as an efficient radio resource allocation scheme and the performance is compared to the circuit and packet switching. In burst switching, radio resource is allocated to a call for the duration of data bursts rather than an entire session or a single packet as in the case of circuit and packet switching. After a stream of data burst, if a packet does not arrive during timer2 value ($\tau_{2}$), the channel of physical layer is released and the call stays in suspended state. Again if a packet does not arrive for timerl value ($\tau_{1}$) in the suspended state, the upper layer is also released. Thus the two timer values to minimize the sum of access delay and queuing delay need to be determined. In this paper, we focus on the decision of $\tau_{2}$ which minimizes the access and queueing delay with the assumption that traffic arrivals follow Poison process. The simulation, however, is performed with Pareto distribution which well describes the bursty traffic. The computational results show that the delay and the packet loss probability by the burst switching is dramatically reduced compared to the packet switching.

Keywords

References

  1. Huebner, F., Liu, D. and Fernandez, J. M. (1998), Queuing Performance Comparison of Traffic Models for Internet Traffic, IEEE GLOBECOM 1998
  2. Nabe, M., Murata, M. and Miyahara, H. (1997), Analysis and Modeling of WWW Traffic for Capacity Dimensioning for Internet Access Lines, Proceeding of SPIE Conference on Performance and Control of Network Systems, Dallas, November 1997
  3. Oguz, M., Tekinay, S. and Ozer, S. Z. (1999), Efficient Allocation of Radio Resource for CDMA Based Wireless Packet Data systems, GLOBECOM 1999, 638-643
  4. Ozer, S. Z. (1999), Burst Switching For Third Generation Wireless Communications, VTC 1999
  5. Schwartz, M. (1996), Broadband Integrated Network, Prentice Hall, 75-79
  6. So, J. W. and Cho, D. H. (2000), On Effect of timer object for Sleep Mode Operation in CDMA2000 System, IEEE 2000
  7. Stallings, W. (1998), High-Speed Networks, TCP/IP And ATM Design Principles, Prentice Hall, 181-207
  8. Telecommunications Industry Association (1998), The cdma2000 ITU-RTT Candidate Submission-TR45-5.5, submission to ITU
  9. Willinger, W., Taqqu, M. S. and Erramilli, A. (1996), A bibliographical guide to self-similar traffic and performance modeling for modem high-speed networks, Stochastic Networks: Theory and Applications, Clarendon Press, Oxford, 339-366