TY - GEN
T1 - A new file-specific stripe size selection method for highly concurrent data access
AU - Dong, Bin
AU - Li, Xiuqiao
AU - Xiao, Limin
AU - Ruan, Li
PY - 2012
Y1 - 2012
N2 - The data-intensive scientific applications running on high-end computing system depend on parallel file systems for high-speed data input/output. In most parallel file systems, a file is partitioned into multiple subfiles with a view to allowing it to be accessed concurrently. An important factor in the file partition is the stripe size. However, while working well for certain applications, most existing schemes for determining the stripe size for a file still lack the ability to handle highly concurrent data accesses, which is typical for most parallel scientific applications. To address this problem, this paper presents an analytic model to assess the performance of highly concurrent data accesses at first, and then it describes how to apply this model to select the stripe size of a file. Experimental results demonstrate that the accuracy of the analytic model is around 87.89% and the stripe size selected with it can improve the aggregated I/O bandwidth of FLASH I/O up to 5.8 times compared with well-known methods. This paper also discusses how to incorporate our method into real-world parallel file systems.
AB - The data-intensive scientific applications running on high-end computing system depend on parallel file systems for high-speed data input/output. In most parallel file systems, a file is partitioned into multiple subfiles with a view to allowing it to be accessed concurrently. An important factor in the file partition is the stripe size. However, while working well for certain applications, most existing schemes for determining the stripe size for a file still lack the ability to handle highly concurrent data accesses, which is typical for most parallel scientific applications. To address this problem, this paper presents an analytic model to assess the performance of highly concurrent data accesses at first, and then it describes how to apply this model to select the stripe size of a file. Experimental results demonstrate that the accuracy of the analytic model is around 87.89% and the stripe size selected with it can improve the aggregated I/O bandwidth of FLASH I/O up to 5.8 times compared with well-known methods. This paper also discusses how to incorporate our method into real-world parallel file systems.
KW - File partition
KW - File-specific stripe size
KW - Highly concurrent data accesses
KW - Performance optimization
UR - https://www.scopus.com/pages/publications/84869025352
U2 - 10.1109/Grid.2012.11
DO - 10.1109/Grid.2012.11
M3 - 会议稿件
AN - SCOPUS:84869025352
SN - 9780769548159
T3 - Proceedings - IEEE/ACM International Workshop on Grid Computing
SP - 22
EP - 30
BT - Proceedings - 13th ACM/IEEE International Conference on Grid Computing, Grid 2012
PB - IEEE Computer Society
T2 - 13th ACM/IEEE International Conference on Grid Computing, Grid 2012
Y2 - 20 September 2012 through 23 September 2012
ER -