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A robust fault-tolerant and scalable cluster-wide deduplication for shared-nothing storage systemsoa mark
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Publication Year
2018-11-07
Journal
Proceedings - 26th IEEE International Symposium on Modeling, Analysis and Simulation of Computer and Telecommunication Systems, MASCOTS 2018
Publisher
Institute of Electrical and Electronics Engineers Inc.
Citation
Proceedings - 26th IEEE International Symposium on Modeling, Analysis and Simulation of Computer and Telecommunication Systems, MASCOTS 2018, pp.87-93
Keyword
Data DeduplicationDistributed and cloud computingDistributed Storage SystemsStorage and file systems
Mesh Keyword
Data de duplicationsDesign constraintsDesign specificationDistributed and cloud computingDistributed storage systemFile systemsPerformance degradationPerformance scalability
All Science Classification Codes (ASJC)
Computer Networks and CommunicationsModeling and Simulation
Abstract
Deduplication has been largely employed in distributed storage systems to improve space efficiency. Traditional deduplication research ignores the design specifications of shared-nothing distributed storage systems such as no central metadata bottleneck, scalability, and storage rebalancing. Further, deduplication introduces transactional changes, which are prone to errors in the event of a system failure, resulting in inconsistencies in data and deduplication metadata. In this paper, we propose a robust, fault-Tolerant and scalable cluster-wide deduplication that can eliminate duplicate copies across the cluster. We design a distributed deduplication metadata shard which guarantees performance scalability while preserving the design constraints of shared-nothing storage systems. The placement of chunks and deduplication metadata is made cluster-wide based on the content fingerprint of chunks. To ensure transactional consistency and garbage identification, we employ a flag-based asynchronous consistency mechanism. We implement the proposed deduplication on Ceph. The evaluation shows high disk-space savings with minimal performance degradation as well as high robustness in the event of sudden server failure.
Language
eng
URI
https://aurora.ajou.ac.kr/handle/2018.oak/36305
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85058318460&origin=inward
DOI
https://doi.org/10.1109/mascots.2018.00016
Journal URL
http://ieeexplore.ieee.org/xpl/mostRecentIssue.jsp?punumber=8526478
Type
Conference Paper
Funding
This work was supported by Institute for Information & communications TechnologyPromotion(IITP) grant funded by the Korea government(MSIT) (No.2014-0-00035).
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