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An efficient management scheme for large-scale flash-memory storage systems

Published: 14 March 2004 Publication History
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    Flash memory is among the top choices for storage media in ubiquitous computing. With a strong demand of high-capacity storage devices, the usages of flash memory quickly grow beyond their original designs. The very distinct characteristics of flash memory introduce serious challenges to engineers in resolving the quick degradation of system performance and the huge demand of main-memory space for flash-memory management when high-capacity flash memory is considered. Although some brute-force solutions could be taken, such as the enlarging of management granularity for flash memory, we showed that little advantage is received when system performance is considered. This paper proposes a flexible management scheme for large-scale flash-memory storage systems. The objective is to efficiently manage high-capacity flash-memory storage systems based on the behaviors of realistic access patterns. The proposed scheme could significantly reduce the main-memory usages without noticeable performance degradation.

    References

    [1]
    A. Kawaguchi, S. Nishioka, and H. Motoda, "A flash-memory based File System," Proceedings of the USENIX Technical Conference, 1995.]]
    [2]
    F. Douglis, R. Caceres, F. Kaashoek, K. Li, B. Marsh, and J. A. Tauber, "Storage Alternatives for Mobile Computers," Proceedings of the USENIX Operating System Design and Implementation, 1994.]]
    [3]
    L. P. Chang and T. W. Kuo, "A Real-time Garbage Collection Mechanism for Flash Memory Storage System in Embedded Systems," The 8th International Conference on Real-Time Computing Systems and Applications, 2002.]]
    [4]
    L. P. Chang and T. W. Kuo, "A Dynamic-Voltage-Adjustment Mechanism in Reducing the Power Consumption of Flash Memory for Portable Devices," IEEE Conference on Consumer Electronics, 2001.]]
    [5]
    L. P. Chang, and T. W. Kuo, "An Adaptive Striping Architecture for Flash Memory Storage Systems of Embedded Systems," The 8th IEEE Real-Time and Embedded Technology and Applications Symposium, 2002.]]
    [6]
    M. Wu, and W. Zwaenepoel, "eNVy: A Non-Volatile, Main Memory Storage System," Proceedings of the 6th International Conference on Architectural Support for Programming Languages and Operating Systems, 1994.]]
    [7]
    D. Woodhouse, Red Hat, Inc. "JFFS: The Journalling Flash File System".]]
    [8]
    Aleph One Company, "Yet Another Flash Filing System".]]
    [9]
    Intel Corporation, "Understanding the Flash Translation Layer(FTL) Specification".]]
    [10]
    SSFDC Forum, "SmartMedia#8482; Specification", 1999.]]
    [11]
    Compact Flash Association, "CompactFlash#8482; 1.4 Specification," 1998.]]
    [12]
    M-Systems, Flash-memory Translation Layer for NAND flash (NFTL).]]

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    cover image ACM Conferences
    SAC '04: Proceedings of the 2004 ACM symposium on Applied computing
    March 2004
    1733 pages
    ISBN:1581138121
    DOI:10.1145/967900
    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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    New York, NY, United States

    Publication History

    Published: 14 March 2004

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    Author Tags

    1. consumer electronics
    2. embedded systems
    3. flash memory
    4. memory management
    5. portable devices
    6. storage systems

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    SAC04
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    SAC04: The 2004 ACM Symposium on Applied Computing
    March 14 - 17, 2004
    Nicosia, Cyprus

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    Overall Acceptance Rate 1,650 of 6,669 submissions, 25%

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    • (2022)Accelerating Garbage Collection of 3D Flash Memory via Exploiting Inter-Channel Parallelism2022 IEEE 40th International Conference on Computer Design (ICCD)10.1109/ICCD56317.2022.00033(162-169)Online publication date: Oct-2022
    • (2020)Liquid information flow controlProceedings of the ACM on Programming Languages10.1145/34089874:ICFP(1-30)Online publication date: 3-Aug-2020
    • (2020)Beyond Address Mapping: A User-Oriented Multiregional Space Management Design for 3-D NAND Flash MemoryIEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems10.1109/TCAD.2019.291293739:6(1286-1299)Online publication date: Jun-2020
    • (2019)Recovery PreparationSoftware Design for Resilient Computer Systems10.1007/978-3-030-21244-5_8(111-140)Online publication date: 10-Jul-2019
    • (2018)A Survey on Flash Translation Layer for NAND Flash MemoryIndian Journal of Science and Technology10.17485/ijst/2018/v11i23/12564111:23(1-7)Online publication date: 1-Jun-2018
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    • (2016)The quantified universityACM SIGCAS Computers and Society10.1145/3024949.302495346:3(28-44)Online publication date: 12-Dec-2016
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