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Secure Optimization Computation Outsourcing in Cloud Computing: A Case Study of Linear Programming

机译:云计算中的安全优化计算外包:线性规划的案例研究

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摘要

Cloud computing enables an economically promising paradigm of computation outsourcing. However, how to protect customers confidential data processed and generated during the computation is becoming the major security concern. Focusing on engineering computing and optimization tasks, this paper investigates secure outsourcing of widely applicable linear programming (LP) computations. Our mechanism design explicitly decomposes LP computation outsourcing into public LP solvers running on the cloud and private LP parameters owned by the customer. The resulting flexibility allows us to explore appropriate security/efficiency tradeoff via higher-level abstraction of LP computation than the general circuit representation. Specifically, by formulating private LP problem as a set of matrices/vectors, we develop efficient privacy-preserving problem transformation techniques, which allow customers to transform the original LP into some random one while protecting sensitive input/output information. To validate the computation result, we further explore the fundamental duality theorem of LP and derive the necessary and sufficient conditions that correct results must satisfy. Such result verification mechanism is very efficient and incurs close-to-zero additional cost on both cloud server and customers. Extensive security analysis and experiment results show the immediate practicability of our mechanism design.
机译:云计算实现了经济上有希望的计算外包范例。但是,如何保护客户在计算过程中处理和生成的机密数据已成为主要的安全问题。针对工程计算和优化任务,本文研究了广泛应用的线性规划(LP)计算的安全外包。我们的机制设计将LP计算外包明确分解为在云上运行的公共LP解算器和客户拥有的私有LP参数。所产生的灵活性使我们能够通过比一般电路表示更高级的LP计算抽象来探索适当的安全性/效率权衡。具体而言,通过将私有LP问题表述为一组矩阵/向量,我们开发了有效的隐私保护问题转换技术,该技术可让客户在保护敏感的输入/输出信息的同时将原始LP转换为一些随机的LP。为了验证计算结果,我们进一步探索了LP的基本对偶定理,并得出了正确结果必须满足的必要条件和充分条件。这种结果验证机制非常有效,并且在云服务器和客户上产生接近零的额外成本。广泛的安全性分析和实验结果表明,我们的机构设计具有直接的实用性。

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