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Towards Mitigating Uncertainty of Data Security Breaches and Collusion in Cloud Computing

机译:为了缓解云计算中数据安全漏洞和勾结的不确定性

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摘要

Cloud computing has become a part of people's lives. However, there are many unresolved problems with security of this technology. According to the assessment of international experts in the field of security, there are risks in the appearance of cloud collusion in uncertain conditions. To mitigate this type of uncertainty, and minimize data redundancy of encryption together with harms caused by cloud collusion, modified threshold Asmuth-Bloom and weighted Mignotte secret sharing schemes are used. We show that if the villains do know the secret parts, and/or do not know the secret key, they cannot recuperate the secret. If the attackers do not know the required number of secret parts but know the secret key, the probability that they obtain the secret depends the size of the machine word in bits that is less than 1/2~(l-1). We demonstrate that the proposed scheme ensures security under several types of attacks. We propose four approaches to select weights for secret sharing schemes to optimize the system behavior based on data access speed: pessimistic, balanced, and optimistic, and on speed per price ratio. We use the approximate method to improve the detection, localization and error correction accuracy under cloud parameters uncertainty.
机译:云计算已成为人们生活的一部分。但是,这项技术的安全性有许多未解决的问题。根据安全领域的国际专家评估,在不确定条件下云勾结的外观存在风险。为了减轻这种类型的不确定性,并尽量减少加密数据冗余以及由云勾结引起的危害,使用修改的阈值ASMuth-Bloom和加权Mignotte秘密共享方案。我们展示如果恶棍确实知道秘密部分,而且/或不知道秘密密钥,他们就无法彻底审理秘密。如果攻击者不知道所需的秘密部分,但知道秘密密钥,他们获得秘密的概率取决于小于1/2〜(l-1)的机器字的大小。我们证明该方案确保了几种类型的攻击下的安全性。我们提出了四种方法来选择秘密共享方案的权重,以优化基于数据访问速度的系统行为:悲观,平衡,乐观,以及每次价格比的速度。我们使用近似方法来提高云参数不确定性下的检测,本地化和纠错精度。

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