Experimental and theoretical analysis of storage friendly TCP performance in distributed storage area network

被引:0
|
作者
Sivasankaran, Gayathri [1 ]
Muknahallipatna, Suresh [1 ]
Miles, Joseph [1 ]
Brothers, Timothy [1 ]
Mandagere, Nagapramod [1 ]
White, Joseph L. [2 ]
机构
[1] Univ Wyoming, Dept Elect & Comp Engn, Laramie, WY 82071 USA
[2] McDATA Corp, Broomfield, CO 80021 USA
关键词
TCP; congestion; packet loss; storage; fibre channel;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Fibre channel storage area networks (SAN) are widely implemented in production data center environments. Recently the storage industry has moved towards deployment of distributed SANs (DSAN), geographically dispersed across large physical distances. In a distributed SAN, specialized gateway devices interconnect the individual Fibre Channel fabrics over IP networks using TCP/IP based protocols (iFCP, FCIP) or over metro to long distance optical networks such as DWDM using native Fibre Channel ports supporting large numbers of link credits. When using TCP/IP based storage networking protocols to interconnect local FC fabrics in a distributed SAN, the sustained throughput achievable depends upon the link characteristics and TCP/IP stack implementation. Sustaining maximum possible storage traffic throughput across the wide area network enables practical distributed SAN deployments by maintaining the required site to site service level agreements. This study explores the effects of several TCP/IP modifications known as storage friendly on sustained traffic throughput for a distributed SAN interconnected via iFCP gateways across an impaired network. The TCP/IP stack modifications include changes to the window scaling, congestion avoidance, and fast recovery algorithms. The theoretical background and experimental results are presented to explain and illustrate these modifications.
引用
收藏
页码:140 / +
页数:2
相关论文
共 50 条
  • [21] A Distributed Storage System Using a Mobile Ad hoc Network: Distributed Storage System
    Nathaniel, Arhantika
    Goyal, Angelic
    Kaur, Parmeet
    INTERNATIONAL JOURNAL OF DISTRIBUTED SYSTEMS AND TECHNOLOGIES, 2019, 10 (03) : 76 - 89
  • [22] Analysis and experimental study on pipe network cold storage performance of regional energy system
    Chu W.
    He W.
    Yu C.
    Zhou Z.
    Xu G.
    Bi G.
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2022, 43 (04): : 90 - 94
  • [23] Robust-DSN - Performance and Fault Tolerance of a Distributed Storage Network
    Hameed, Zeeshan
    Barzegar, Hamid R.
    El Ioini, Nabil
    Pahl, Claus
    2023 EIGHTH INTERNATIONAL CONFERENCE ON FOG AND MOBILE EDGE COMPUTING, FMEC, 2023, : 115 - 122
  • [24] Optimized utilization of disks in Storage Area Network by Storage Tiering
    Jacob, Edwina
    Jaswal, Shree
    2017 IEEE INTERNATIONAL CONFERENCE ON COMPUTING, COMMUNICATION AND AUTOMATION (ICCCA), 2017, : 637 - 640
  • [25] Network coding for distributed storage systems
    Dimakis, Alexandros G.
    Godfrey, P. Brighten
    Wainwright, Martin J.
    Ramchandran, Kannan
    INFOCOM 2007, VOLS 1-5, 2007, : 2000 - +
  • [26] Durable Network Coded Distributed Storage
    Abdrashitov, Vitaly
    Medard, Muriel
    2015 53RD ANNUAL ALLERTON CONFERENCE ON COMMUNICATION, CONTROL, AND COMPUTING (ALLERTON), 2015, : 851 - 856
  • [27] A Survey on Network Codes for Distributed Storage
    Dimakis, Alexandros G.
    Ramchandran, Kannan
    Wu, Yunnan
    Suh, Changho
    PROCEEDINGS OF THE IEEE, 2011, 99 (03) : 476 - 489
  • [28] Experimental and theoretical analysis of mass transfer in a refrigerated food storage
    Rajkumar Bishnoi
    K. R. Aharwal
    Heat and Mass Transfer, 2022, 58 : 1845 - 1855
  • [29] Network Coding for Distributed Storage Systems
    Dimakis, Alexandros G.
    Godfrey, P. Brighten
    Wu, Yunnan
    Wainwright, Martin J.
    Ramchandran, Kannan
    IEEE TRANSACTIONS ON INFORMATION THEORY, 2010, 56 (09) : 4539 - 4551
  • [30] Experimental and theoretical analysis of mass transfer in a refrigerated food storage
    Bishnoi, Rajkumar
    Aharwal, K. R.
    HEAT AND MASS TRANSFER, 2022, 58 (10) : 1845 - 1855