DocumentCode
1780375
Title
Repairable Block Failure Resilient codes
Author
Calis, Gokhan ; Koyluoglu, O.O.
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Arizona, Tucson, AZ, USA
fYear
2014
fDate
June 29 2014-July 4 2014
Firstpage
2435
Lastpage
2439
Abstract
In large scale distributed storage systems (DSS) deployed in cloud computing, correlated failures resulting in simultaneous failure (or, unavailability) of blocks of nodes are common. In such scenarios, the stored data or a content of a failed node can only be reconstructed from the available live nodes belonging to available blocks. To analyze the resilience of the system against such block failures, this work introduces the framework of Block Failure Resilient (BFR) codes, wherein the data (e.g., file in DSS) can be decoded by reading out from a same number of codeword symbols (nodes) from each available blocks of the underlying codeword. Further, repairable BFR codes are introduced, wherein any codeword symbol in a failed block can be repaired by contacting to remaining blocks in the system. Motivated from regenerating codes, file size bounds for repairable BFR codes are derived, trade-off between per node storage and repair bandwidth is analyzed, and BFR-MSR and BFR-MBR points are derived. Explicit codes achieving these two operating points for a wide set of parameters are constructed by utilizing combinatorial designs, wherein the codewords of the underlying outer codes are distributed to BFR codeword symbols according to projective planes.
Keywords
block codes; cloud computing; combinatorial mathematics; fault tolerant computing; storage management; system recovery; BFR codeword symbol; BFR-MBR point; BFR-MSR point; DSS; cloud computing; combinatorial design; distributed storage system; explicit code; minimum bandwidth regenerating point; minimum storage regenerating point; repairable block failure resilient code; Bandwidth; Data collection; Decision support systems; Information theory; Joining processes; Maintenance engineering; Resilience;
fLanguage
English
Publisher
ieee
Conference_Titel
Information Theory (ISIT), 2014 IEEE International Symposium on
Conference_Location
Honolulu, HI
Type
conf
DOI
10.1109/ISIT.2014.6875271
Filename
6875271
Link To Document