• DocumentCode
    78442
  • Title

    MINT: A Reliability Modeling Frameworkfor Energy-Efficient Parallel Disk Systems

  • Author

    Shu Yin ; Xiaojun Ruan ; Manzanares, Adam ; Xiao Qin ; Kenli Li

  • Author_Institution
    Sch. of Inf. Sci. & Eng., Hunan Univ., Changsha, China
  • Volume
    11
  • Issue
    4
  • fYear
    2014
  • fDate
    July-Aug. 2014
  • Firstpage
    345
  • Lastpage
    360
  • Abstract
    The Popular Disk Concentration (PDC) technique and the Massive Array of Idle Disks (MAID) technique are two effective energy conservation schemes for parallel disk systems. The goal of PDC and MAID is to skew I/O load toward a few disks so that other disks can be transitioned to low power states to conserve energy. I/O load skewing techniques like PDC and MAID inherently affect reliability of parallel disks, because disks storing popular data tend to have high failure rates than disks storing cold data. To study reliability impacts of energy-saving techniques on parallel disk systems, we develop a mathematical modeling framework called MINT. We first model the behaviors of parallel disks coupled with power management optimization policies. We make use of data access patterns as input parameters to estimate each disk´s utilization and power-state transitions. Then, we derive each disk´s reliability in terms of annual failure rate from the disk´s utilization, age, operating temperature, and power-state transition frequency. Next, we calculate the reliability of PDC and MAID parallel disk systems in accordance with the annual failure rate of each disk in the systems. Finally, we use real-world trace to validate out MINT model. Validation result shows that the behaviors of PDC and MAID which are modeled by MINT have a similar trend as that in the real-world.
  • Keywords
    disc storage; fault tolerant computing; parallel processing; power aware computing; IO load skewing techniques; MAID; MINT; PDC; annual failure rate; cold data; data access patterns; disk reliability; energy conservation schemes; energy-efficient parallel disk systems; energy-saving techniques; failure rates; low power states; massive array of idle disks; operating temperature; popular disk concentration technique; power management optimization policies; power-state transition frequency; power-state transitions; reliability modeling framework; Adders; Arrays; Google; Market research; Reliability; Temperature distribution; MAID; PDC; Parallel disk system; energy conservation; load balancing; reliability;
  • fLanguage
    English
  • Journal_Title
    Dependable and Secure Computing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1545-5971
  • Type

    jour

  • DOI
    10.1109/TDSC.2013.47
  • Filename
    6654154