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Secure and Verifiable Outsourcing of Large-Scale Matrix Inversion without Precondition in Cloud Computing

机译:在没有云计算前提条件的情况下,大规模矩阵求逆的安全可验证外包

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Large-scale matrix computation requires a lot of computing resources, but the emergence of cloud computing provides resource-limited users with an economical solution, namely outsourcing computation. Clients can use pay-per-use service of cloud resources to solve complex issues, such as matrix inversion. However, due to the inclusion of privacy information in users' data and the opacity of the calculation operations, clients are in face of the threats of privacy disclosure and fraud. In this paper, we first propose an efficient and secure scheme without precondition for outsourcing large- scale matrix inversion to a public cloud. Compared to the state-of-the-art schemes, our scheme does not require the precondition that the original matrix should be invertible. It relieves clients from checking the invertibility of matrix, which is hard to be implemented with limited resource in reality. Moreover, our scheme can protect clients from being cheated and provide data privacy protection. Experiment results also show that our scheme is highly efficient in practical.
机译:大规模矩阵计算需要大量计算资源,但是云计算的出现为资源有限的用户提供了一种经济的解决方案,即外包计算。客户可以使用按使用量付费的云资源服务来解决复杂的问题,例如矩阵求逆。但是,由于在用户数据中包含隐私信息并且计算操作不透明,因此客户面临隐私公开和欺诈的威胁。在本文中,我们首先提出了一种高效且安全的方案,而没有将大型矩阵求逆外包给公共云的前提。与最新方案相比,我们的方案不需要先决条件,即原始矩阵应该是可逆的。它使客户不必检查矩阵的可逆性,而在现实中用有限的资源很难实现该可逆性。此外,我们的方案可以保护客户免受欺骗并提供数据隐私保护。实验结果还表明,该方案在实际应用中是高效的。

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