多云存储环境下保护隐私的第三方审计

M. Shashidhara, C. P. Jaini
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引用次数: 5

摘要

云模式提供的按需、按使用付费和可扩展的服务保证了减少硬件和软件的资本和运行支出。在云环境中,用户可以远程存储数据,并从可配置的计算资源共享池中访问数据,无需承担本地数据存储的负担。我们讨论了与云范式中的安全和隐私功能相关的各种方法,特别是多云环境中的数据存储。我们以多云架构的形式提供了三种模型,允许对方案进行分类并根据其安全效益进行分析。不同的方法包括:资源复制、基于PIR方法的应用系统分层、应用逻辑和数据分段。此外,对于计算资源有限的用户来说,云计算中数据的完整性保护是一项艰巨的任务,因此第三方审计也可能存在用户数据隐私漏洞。因此,我们提出了一种安全的云存储方法,支持保护隐私的第三方审计。我们还研究了结果,以便以有效的方式对多个用户并发地执行审计。实验结果表明,第三方审计的计算时间优于现有的审计方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Privacy Preserving Third Party Auditing in Multi Cloud Storage Environment
The on-demand, pay-per-use, and scalable services provided in cloud model guarantee to reduce capital as well as running expenditures for both hardware and software. In cloud environment, users can remotely store their data and access them from a shared pool of configurable computing resources, without local data storage burden. We discuss various methods related to the security and privacy capabilities in cloud paradigm especially data storage in multi cloud environment. We provide three models in form of multicloud architectures which allow categorizing the schemes and analyze them according to their security benefits. The different methods include, resource replication, split application system into tiers based on PIR methods, split both application logic and data into segments. In addition, since the integrity protection of data is a fearsome task in Cloud computing for users with limited computing resources, vulnerabilities in user data privacy are also possible in third party auditing. So we propose a safe cloud storage methodology which supports privacy-preserving third party auditing. And we study the outcomes to perform audits concurrently for multiple users in an efficient manner. Experimental results show that the third party auditing computation time is better than existing approach.
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