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首页> 外文期刊>International journal of business information systems >Cost-effective privacy preserving of intermediate data using group search optimisation algorithm
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Cost-effective privacy preserving of intermediate data using group search optimisation algorithm

机译:使用组搜索优化算法的中间数据的经济有效的隐私保留

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Cloud computing provides huge storage ability to clients, in order to convey their applications without any infrastructure investment. Alongside those applications, an extensive set of intermediate datasets will be created, and it is a challenging issue to protect the security of those intermediate datasets. Therefore, in this paper, we preserve only sensitive information which reduces the time and cost. For privacy preserving of the intermediate dataset, in this paper, we propose a combination of group search optimisation (GSO) and advanced encryption standard (AES). At first, the original dataset is split into an intermediate dataset and we select the corresponding node from the cloud for each intermediate dataset using GSO algorithm. After that, we separate the sensitive data using information gain. Finally, we apply the AES to encrypt the sensitive data. The performance of proposed methodology is in terms of encryption time and memory usage.
机译:云计算为客户提供了巨大的存储能力,以便在没有任何基础架构投资的情况下传达他们的应用。除了这些应用程序外,将创建广泛的中间数据集,保护这些中间数据集的安全性是一个具有挑战性的问题。因此,在本文中,我们仅保留减少时间和成本的敏感信息。对于中间数据集的隐私保留,在本文中,我们提出了组搜索优化(GSO)和高级加密标准(AES)的组合。首先,原始数据集被分成中间数据集,并使用GSO算法选择来自云中的相应节点。之后,我们使用信息增益分离敏感数据。最后,我们应用AES加密敏感数据。提出方法的性能在加密时间和内存使用方面。

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