• DocumentCode
    41795
  • Title

    POXN: A New Passive Optical Cross-Connection Network for Low-Cost Power-Efficient Datacenters

  • Author

    Ni, W. ; Changcheng Huang ; Liu, Y.L. ; Weiwei Li ; Kin-Wai Leong ; Jing Wu

  • Author_Institution
    Dept. of Syst. & Comput. Eng., Carleton Univ., Ottawa, ON, Canada
  • Volume
    32
  • Issue
    8
  • fYear
    2014
  • fDate
    15-Apr-14
  • Firstpage
    1482
  • Lastpage
    1500
  • Abstract
    Passive optical devices, characterized by low cost, zero energy consumption, and high reliability, are essential building blocks for today´s telecom network infrastructure, permeating from conventional backbone transport networks towards next-generation broadband access networks. Motivated by the striking features of passive optical devices, in this paper, we seek their potential applications in emerging datacenter networks to tackle the scalability challenges arising from cost and power. Specifically, we propose passive optical cross-connection networks (POXNs) that enable cost-saving, power-efficient, and reliable communication within datacenters. To support POXNs in warehouse-scale datacenters, we address physical-layer scalability challenges by using advanced interconnection techniques. Next, we propose a distributed polling protocol to address link-layer issues that arise from the broadcast nature of the medium. The performance of our protocol is studied through analysis and simulation. In particular, we develop an analytical model to compute lower and upper bounds on the expected delay of a packet. Numerical results show that the mean packet delay is equal to the lower bound in one regime, while converges to the upper bound in the complementary regime. Results also show that our protocol can achieve high bandwidth efficiency (no less than 85% in our studied case). Additionally, we demonstrate that our protocol can embrace scheduling algorithms that support fairness and QoS. Last, we sketch the roles POXNs can play in various datacenter network architectures in terms of capital and operational cost reductions.
  • Keywords
    optical interconnections; optical links; passive optical networks; protocols; quality of service; scheduling; POXN; QoS; bandwidth efficiency; cost-saving power-efficient reliable communication; datacenter network architectures; distributed polling protocol; interconnection techniques; link-layer; low-cost power-efficient datacenters; next-generation broadband access networks; packet delay; passive optical cross-connection network; passive optical devices; physical-layer scalability; scheduling algorithms; telecom network infrastructure; warehouse-scale datacenters; Couplers; Fabrics; Optical coupling; Optical packet switching; Optical switches; Ports (Computers); Protocols; Coupler fabric; datacenter networks; delay analysis; optical interconnects; optical networks; polling protocol;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2013.2295599
  • Filename
    6695784