DocumentCode
16070
Title
On Minimizing Data-Read and Download for Storage-Node Recovery
Author
Shah, N.B.
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., Univ. of California, Berkeley, Berkeley, CA, USA
Volume
17
Issue
5
fYear
2013
fDate
May-13
Firstpage
964
Lastpage
967
Abstract
We consider the problem of efficient recovery of the data stored in any individual node of a distributed storage system, from the rest of the nodes. Applications include handling failures and degraded reads. We measure efficiency in terms of the amount of data-read and the download required. To minimize the download, we focus on the minimum bandwidth setting of the ´regenerating codes´ model for distributed storage. Under this model, the system has a total of n nodes, and the data stored in any node must be (efficiently) recoverable from any d of the other (n-1) nodes. Lower bounds on the two metrics under this model were derived previously; it has also been shown that these bounds are achievable for the amount of data-read and download when d=n-1, and for the amount of download alone when d≠ n-1. In this paper, we complete the picture by proving the converse result, that when d≠ n-1, these lower bounds are strictly loose with respect to the amount of read required. The proof is information-theoretic, and hence applies to non-linear codes as well. We also show that under two (practical) relaxations of the problem setting, these lower bounds can be met for both read and download simultaneously.
Keywords
cache storage; distributed shared memory systems; nonlinear codes; system recovery; data-read and download; distributed storage system; nonlinear codes; regenerating codes model; storage-node recovery; Bandwidth; Data models; Distributed databases; Maintenance engineering; Symmetric matrices; Systematics; Vectors; Distributed storage; efficient-repair; regenerating codes; reliability;
fLanguage
English
Journal_Title
Communications Letters, IEEE
Publisher
ieee
ISSN
1089-7798
Type
jour
DOI
10.1109/LCOMM.2013.040213.130006
Filename
6496991
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