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Open AccessProceedings ArticleDOI

Privacy-Preserving Public Auditing for Data Storage Security in Cloud Computing

TLDR
This paper utilize and uniquely combine the public key based homomorphic authenticator with random masking to achieve the privacy-preserving public cloud data auditing system, which meets all above requirements.
Abstract
Cloud Computing is the long dreamed vision of computing as a utility, where users can remotely store their data into the cloud so as to enjoy the on-demand high quality applications and services from a shared pool of configurable computing resources. By data outsourcing, users can be relieved from the burden of local data storage and maintenance. However, the fact that users no longer have physical possession of the possibly large size of outsourced data makes the data integrity protection in Cloud Computing a very challenging and potentially formidable task, especially for users with constrained computing resources and capabilities. Thus, enabling public auditability for cloud data storage security is of critical importance so that users can resort to an external audit party to check the integrity of outsourced data when needed. To securely introduce an effective third party auditor (TPA), the following two fundamental requirements have to be met: 1) TPA should be able to efficiently audit the cloud data storage without demanding the local copy of data, and introduce no additional on-line burden to the cloud user; 2) The third party auditing process should bring in no new vulnerabilities towards user data privacy. In this paper, we utilize and uniquely combine the public key based homomorphic authenticator with random masking to achieve the privacy-preserving public cloud data auditing system, which meets all above requirements. To support efficient handling of multiple auditing tasks, we further explore the technique of bilinear aggregate signature to extend our main result into a multi-user setting, where TPA can perform multiple auditing tasks simultaneously. Extensive security and performance analysis shows the proposed schemes are provably secure and highly efficient.

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Citations
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Journal Article

Public Audit for Cloud Computing Environment: A Review

TL;DR: The paper reviews privacy preserving public audit schemes in cloud computing environment and shows keen interest to provide a cloud framework, which preserves the privacy and ensures the integrity of cloud data.

Preserving Privacy using Third Party Auditor in Cloud for Data Storage

TL;DR: The proposed system makes use of AES algorithm to maintain data integrity at the untrusted server to expand the user level safety and supplied a click on point based graphical password scheme and One Time Password (OTP) on the time of uploading the file.
Proceedings ArticleDOI

Group data searching and sharing using key aggregate cryptosystem

TL;DR: A system which enables secure data sharing in the group of users as well as efficient key management and secure constant cipher text which is impartial of data size is developed.

To Ensure Data Possession of Multiple Auditing In The Distributed Storage System Using TPA

TL;DR: It is of vital importance to enable public auditing service for cloud data storage so that users may resort to an independent third-party auditor (TPA) to audit the outsourced data when needed.
Journal ArticleDOI

Privacy Preservation using Shamir’s Secrete Sharing Algorithm for Data Storage Security

TL;DR: A Shamir’s Secrete sharing algorithm for Privacy Preservation for data Storage security in cloud computing is proposed which can achieve confidentiality, integrity and availability of the data.
References
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Journal Article

Above the Clouds: A Berkeley View of Cloud Computing

TL;DR: This work focuses on SaaS Providers (Cloud Users) and Cloud Providers, which have received less attention than SAAS Users, and uses the term Private Cloud to refer to internal datacenters of a business or other organization, not made available to the general public.
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Short Signatures from the Weil Pairing

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Posted Content

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Journal ArticleDOI

Security Arguments for Digital Signatures and Blind Signatures

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