Multiuser rate-based flow control

被引:58
|
作者
Altman, E [1 ]
Basar, T
机构
[1] INRIA, F-06902 Sophia Antipolis, France
[2] Univ Illinois, Coordinated Sci Lab, Urbana, IL 61801 USA
基金
美国国家科学基金会;
关键词
high-speed networks; linear-quadratic control; linear-quadratic differential games; multiuser rate-based flow control; Nash equilibria;
D O I
10.1109/26.701322
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Flow and congestion control allow the users of a telecommunication network to regulate the traffic that they send into the network in accordance with the quality of service that they require. Flow control may be performed by the network, as Ls the case in asynchronous transfer mode (ATM) networks (the available bit rate (ABR) transfer capacity), or by the users themselves, as is the case in the Internet [transmission control protocol/Internet protocol (TCP/IP)]. We study in this paper both situations using optimal control and dynamic game techniques. The first situation leads to the formulation of a dynamic team problem, while the second one leads to a dynamic noncooperative game, for which we establish the existence and uniqueness of a linear Nash equilibrium and obtain a characterization of the corresponding equilibrium policies along with the performance costs. We further show that when the users update their policies in a greedy manner, not knowing a priori the utilities of the other players, the sequence of policies thus generated converges to the Nash equilibrium. Finally, we study an extension of the model that accommodates multiple traffic types for each user,,vith the switching from one type of traffic to another being governed by a Markov jump process. Presentation of some numerical results complements this study.
引用
收藏
页码:940 / 949
页数:10
相关论文
共 50 条
  • [1] A Cooperative Differential Game Model for Multiuser Rate-Based Flow Control
    Cheng, Zhi-Mi
    Zhou, Xian-Wei
    Ding, Yan
    Lin, Fu-Hong
    [J]. WIRELESS PERSONAL COMMUNICATIONS, 2013, 72 (02) : 1173 - 1186
  • [2] A Cooperative Differential Game Model for Multiuser Rate-Based Flow Control
    Zhi-Mi Cheng
    Xian-Wei Zhou
    Yan Ding
    Fu-Hong Lin
    [J]. Wireless Personal Communications, 2013, 72 : 1173 - 1186
  • [3] Centralized Flow Control Scheme for rate-based networks
    Deshpande, R
    Kawanishi, K
    Onozato, Y
    Vyavahare, P
    [J]. IETE JOURNAL OF RESEARCH, 2004, 50 (04) : 245 - 256
  • [4] Rate-based flow-control for the CICQ switch
    Yoshigoe, K
    [J]. LCN 2005: 30TH CONFERENCE ON LOCAL COMPUTER NETWORKS, PROCEEDINGS, 2005, : 44 - 50
  • [5] A rate-based flow control mechanism for avoiding congestion
    Zhang, XL
    Wang, YH
    Wu, JY
    [J]. JOURNAL OF COMPUTER SCIENCE AND TECHNOLOGY, 2002, 17 (02): : 227 - 235
  • [6] A rate-based flow control mechanism for avoiding congestion
    Xiaolin Zhang
    Yuhong Wang
    Jieyi Wu
    [J]. Journal of Computer Science and Technology, 2002, 17 : 227 - 235
  • [7] Rate-based flow control of video services in ATM networks
    Dagiuklas, A
    Ghanbari, M
    [J]. IEEE GLOBECOM 1996 - CONFERENCE RECORD, VOLS 1-3: COMMUNICATIONS: THE KEY TO GLOBAL PROSPERITY, 1996, : 284 - 288
  • [8] Refinements to rate-based flow control with extensions to multidrop applications
    Pejhan, S
    Schwartz, M
    Anastassiou, D
    [J]. BROADBAND COMMUNICATIONS: GLOBAL INFRASTRUCTURE FOR THE INFORMATION AGE, 1996, : 147 - 160
  • [9] Two timescale SPSA algorithms for rate-based ABR flow control
    Bhatnagar, S
    Fu, MC
    Marcus, SI
    [J]. SYSTEM THEORY: MODELING, ANALYSIS, AND CONTROL, 2000, 518 : 367 - 378
  • [10] Supervisory rate-based flow control of ATM networks for ABR services
    Cho, KH
    Lim, JT
    [J]. IEICE TRANSACTIONS ON COMMUNICATIONS, 1998, E81B (06) : 1269 - 1271