Using MEMS-based storage in disk

被引:0
|
作者
Uysal, M [1 ]
Merchant, A [1 ]
Alvarez, GA [1 ]
机构
[1] Hewlett Packard Labs, Palo Alto, CA 94304 USA
关键词
D O I
暂无
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Current disk arrays, the basic building blocks of high-performance storage systems, are built around two memory technologies: magnetic disk drives, and non-volatile DRAM caches. Disk latencies are higher by six orders of magnitude than non-volatile DRAM access times, but cache costs over 1000 times more per byte. A new storage technology based on microelectromechanical systems (MEMS) will soon offer a new set of performance and cost characteristics that bridge the gap between disk drives and the caches. We evaluate potential gains in performance and cost by incorporating MEMS-based storage in disk arrays. Our evaluation is based on exploring potential placements of MEMS-based storage in a disk array. We used detailed disk array simulators to replay I/O traces of real applications for the evaluation. We show that replacing disks with MEMS-based storage can improve the array performance dramatically, with a cost performance ratio several times better than conventional arrays even if MEMS storage costs ten times as much as disk. We also demonstrate that hybrid MEMS/disk arrays, which cost less than purely MEMS-based arrays, can provide substantial improvements in performance and cost/performance over conventional arrays.
引用
收藏
页码:89 / 101
页数:13
相关论文
共 50 条
  • [21] Compact and low power ADCs for a MEMS-based probe storage device
    Jose Bonan
    Christoph Hagleitner
    Hassan Aboushady
    Marie-Minerve Louerat
    Analog Integrated Circuits and Signal Processing, 2013, 76 : 23 - 34
  • [22] Compact and low power ADCs for a MEMS-based probe storage device
    Bonan, Jose
    Hagleitner, Christoph
    Aboushady, Hassan
    Louerat, Marie-Minerve
    ANALOG INTEGRATED CIRCUITS AND SIGNAL PROCESSING, 2013, 76 (01) : 23 - 34
  • [23] MEMS-based Human Activity Recognition Using Smartphone
    Tian Ya
    Chen Wenjie
    PROCEEDINGS OF THE 35TH CHINESE CONTROL CONFERENCE 2016, 2016, : 3984 - 3989
  • [24] Experience using MEMS-based accelerometers in dynamic testing
    Stringer, M. E.
    Heron, C. M.
    Madabhushi, S. P. G.
    PHYSICAL MODELLING IN GEOTECHNICS, VOLS. 1 AND 2, 2010, : 389 - 394
  • [25] MEMS-Based RF Oscillators Using SiCer Technology
    Stegner, Johannes
    Fischer, Michael
    Gropp, Sebastian
    Stehr, Uwe
    Hein, Matthias A.
    IEEE MICROWAVE MAGAZINE, 2019, 20 (10) : 71 - 85
  • [26] Study of cell secretion using MEMS-based arrays
    Feng, XJ
    Szaro, BG
    Castracane, J
    MICROFLUIDICS, BIOMEMS, AND MEDICAL MICROSYSTEMS II, 2004, 5345 : 35 - 42
  • [27] MEMS-based projection display
    Van Kessel, PF
    Hornbeck, LJ
    Meier, RE
    Douglass, MR
    PROCEEDINGS OF THE IEEE, 1998, 86 (08) : 1687 - 1704
  • [28] MEMS-BASED OSCILLATORS: A REVIEW
    Karim, Jamilah
    Alam, A. H. M. Zahirul
    Nordin, Anis Nurashikin
    IIUM ENGINEERING JOURNAL, 2014, 15 (01): : 1 - 15
  • [29] MEMS-based optical limiter
    Khoury, Jed
    Haji-Saeed, Bahareh
    Goodhue, William D.
    Woods, Charles L.
    Kierstead, John
    APPLIED OPTICS, 2008, 47 (29) : 5468 - 5472
  • [30] MEMS-BASED MICROFLUIDIC DEVICES
    Gao, Z.
    Ng, K.
    Furlani, E.
    Chwalek, J.
    Hawkins, G.
    PROCEEDINGS OF THE 8TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS AND MINICHANNELS, 2010, PTS A AND B, 2011, : 863 - 868