DocumentCode
87282
Title
MFTS: A Multi-Level Fault-Tolerant Archiving Storage with Optimized Maintenance Bandwidth
Author
Jianzhong Huang ; Xiao Qin ; Fenghao Zhang ; Wei-Shinn Ku ; Changsheng Xie
Author_Institution
Wuhan Nat. Lab. for Optoelectron., Huazhong Univ. of Sci. & Technol., Wuhan, China
Volume
11
Issue
6
fYear
2014
fDate
Nov.-Dec. 2014
Firstpage
524
Lastpage
537
Abstract
In this paper, we propose a multi-level fault-tolerant storage cluster called MFTS, which provides flexible reliability for a wide variety of applications. MFTS makes use of a reliability upper-bound (i.e., Parameter r) to guide the process of adjusting fault-tolerance levels, i.e., i-erasure(s) and i {1, 2, .. ., r}. In particular, MFTS can map an appropriate coding scheme to an application with individual reliability requirements. MFTS is capable of partitioning multi-level reliable storage using a virtual storage space, thereby adapting to any changing reliability demands of applications. We present the implementation of the MFTS system, which adopts an intersecting zigzag sets code (IZS code) rather than replication or general-purpose erasure codes. Our MFTS has three salient features: partial updates, fast reconstructions, and minimal overhead of fault-tolerance level transitions. To quantify performance optimization in our storage cluster, we compare IZS-enabled MFTS with two storage clusters equipped with the Vandermondeand Cauchy-Reed-Solomon codes. The experimental results show that: 1) three schemes have comparable user-response-time performance in both the operational and degraded modes; 2) MFTS outperforms the other two alternatives by up to 26.1 percent in the offline reconstruction case; 3) MFTS speeds up the online reconstruction by up to 23.7 percent over the other two schemes with marginal increase in user response time.
Keywords
fault tolerant computing; optimisation; software reliability; storage allocation; virtual storage; Cauchy-Reed-Solomon code; IZS code; MFTS; Vandermonde-code; fault-tolerance level transitions; intersecting zigzag set code; multilevel fault-tolerant archiving storage; multilevel fault-tolerant storage cluster; optimized maintenance bandwidth; performance optimization; reliability demands; user-response-time performance; virtual storage space; Bandwidth; Encoding; Fault tolerant systems; Maintenance engineering; Redundancy; Erasure-coded storage cluster; TCP-Incast; multi-level fault tolerance; optimized maintenance bandwidth;
fLanguage
English
Journal_Title
Dependable and Secure Computing, IEEE Transactions on
Publisher
ieee
ISSN
1545-5971
Type
jour
DOI
10.1109/TDSC.2014.2304296
Filename
6730930
Link To Document