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Secure and Efficient Cloud Data Deduplication With Randomized Tag

delete2017-03-01
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OA
AI
T
Tao Jiang
X
Xiaofeng Chen *
Q
Qianhong Wu
马建峰 (Jianfeng Ma)
W
Willy Susilo *
W
Wenjing Lou
DOI:10.1109/TIFS.2016.2622013delete
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摘要

摘要

En 中文
Cross-client data deduplication has been widely used to eliminate redundant storage overhead in cloud storage system. Recently, Abadi et al. introduced the primitive of MLE2 with nice security properties for secure and efficient data deduplication. However, besides the computationally expensive noninteractive zero-knowledge proofs, their fully randomized scheme (R-MLE2) requires the inefficient equality-testing algorithm to identify all duplicate ciphertexts. Thus, an interesting challenging problem is how to reduce the overhead of R-MLE2 and propose an efficient construction for R-MLE2. In this paper, we introduce a new primitive called mu R-MLE2, which gives a partial positive answer for this challenging problem. We propose two schemes: static scheme and dynamic scheme, where the latter one allows tree adjustment by increasing some computation cost. Our main trick is to use the interactive protocol based on static or dynamic decision trees. The advantage gained from it is, by interacting with clients, the server will reduce the time complexity of deduplication equality test from linear time to efficient logarithmic time over the whole data items in the database. The security analysis and the performance evaluation show that our schemes are Path-PRV-CDA2 secure and achieve several orders of magnitude higher performance for data equality test than R-MLE2 scheme when the number of data items is relatively large.
Keyword:
Deduplication
convergent encryption
message-locked encryption
interactive protocol
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期刊

IEEE Transactions on Information Forensics and Security 封面图
IEEE Transactions on Information Forensics and Security
IF:
8
论文数:
5.2K
被引数:
2.3W

机构

U
University of Wollongong
学者数:
1.3W
论文数: 1.6W
被引数: 2.8W
X
Xidian University
学者数:
2.4W
论文数: 1.9W
被引数: 9.7K