INPUT RATE FLOW-CONTROL FOR HIGH-SPEED COMMUNICATIONS NETWORKS USING BURST LEVEL FEEDBACK-CONTROL

被引:0
|
作者
RUBIN, I
LIN, KD
机构
来源
EUROPEAN TRANSACTIONS ON TELECOMMUNICATIONS | 1994年 / 5卷 / 01期
关键词
D O I
暂无
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
We propose a new input rate flow control scheme wherein the credit increment rate is updated periodically as the loading status varies. Based upon the observed status of each station's burst-level activity, the network access node distributes feedback control signaling messages to the stations. These signaling messages allow the stations to adapt their credit increment rates in accordance with system burst-loading conditions. The Generic Flow Control (GFC) field of the ATM cell header can be used to carry information characterizing the burst-level loading activity at the switch used in the proposed scheme. We also present queueing models to study the system performance at the network access points. For this purpose, we select a sub-network topology which involves a network switch (such as a fast packet switch in high-speed metropolitan or wide area networks) and a number of regulated source stations which drive the network switch. To avoid packet retransmissions due to cell losses at the access switch, each user station (or CPN) implements locally a replica of the input regulation scheme. The output traffic streams from the source stations, as regulated by the local input rate control mechanism (and adapted by the status messages), load a packet switch which is modeled as a multiple-server queueing system. Performance curves are presented to illustrate the statistical queue-size behavior and message delays at both the source stations and the network switch.
引用
收藏
页码:107 / 123
页数:17
相关论文
共 50 条
  • [21] LIQUID STEEL FLOW-CONTROL IN A HIGH-SPEED CONTINUOUS SLAB CASTER USING A MOLD ELECTROMAGNETIC BRAKE
    NAGAI, J
    SUZUKI, K
    KOJIMA, S
    KOLLBERG, S
    IRON AND STEEL ENGINEER, 1983, 60 (09): : P52 - P52
  • [22] DYNAMIC RATE FLOW-CONTROL FOR HIGH-PERFORMANCE COMMUNICATION-NETWORKS
    KURIBAYASHI, S
    IEICE TRANSACTIONS ON COMMUNICATIONS, 1992, E75B (04) : 285 - 290
  • [23] QoS mechanism for prioritized flow-control for network elements handling high-speed traffic
    Golla, P
    Damm, G
    Ozugur, T
    GLOBECOM'03: IEEE GLOBAL TELECOMMUNICATIONS CONFERENCE, VOLS 1-7, 2003, : 3609 - 3614
  • [24] DYNAMIC WINDOW FLOW-CONTROL ON A HIGH-SPEED WIDE-AREA DATA NETWORK
    HAHNE, EL
    KALMANEK, CR
    MORGAN, SP
    COMPUTER NETWORKS AND ISDN SYSTEMS, 1993, 26 (01): : 29 - 41
  • [25] Adaptive rate control in high-speed networks: performance issues
    Abdelaziz, M
    Stavrakakis, I
    COMPUTER NETWORKS-THE INTERNATIONAL JOURNAL OF COMPUTER AND TELECOMMUNICATIONS NETWORKING, 2001, 37 (3-4): : 363 - 382
  • [26] Flow control in high-speed ATM wide area networks
    Zhou, PF
    Yang, OWW
    UNIVERSITY AND INDUSTRY - PARTNERS IN SUCCESS, CONFERENCE PROCEEDINGS VOLS 1-2, 1998, : 249 - 252
  • [27] BURST REDUCTION PROPERTIES OF THE LEAKY BUCKET FLOW-CONTROL SCHEME IN ATM NETWORKS
    ANANTHARAM, V
    KONSTANTOPOULOS, T
    IEEE TRANSACTIONS ON COMMUNICATIONS, 1994, 42 (12) : 3085 - 3089
  • [28] FEEDBACK-CONTROL OF THE LEVEL OF AROUSAL USING SKIN POTENTIAL LEVEL AS AN INDEX
    NISHIMURA, C
    NAGUMO, JI
    ERGONOMICS, 1985, 28 (06) : 905 - 913
  • [29] Control of congestion in high-speed networks
    Imer, OÇ
    Basar, T
    EUROPEAN JOURNAL OF CONTROL, 2001, 7 (2-3) : 132 - 144
  • [30] High-Speed Active Flow Control
    Haack, S. J.
    Cybyk, B. Z.
    Nedungadi, A.
    Land, H. B.
    Taylor, T. M.
    Katz, J.
    Ko, H. S.
    Alvi, F.
    JOHNS HOPKINS APL TECHNICAL DIGEST, 2010, 28 (03): : 280 - 281