Risk-Aware Workload Distribution in Hybrid Clouds

Kerim Yasin Oktay, V. Khadilkar, B. Hore, Murat Kantarcioglu, S. Mehrotra, B. Thuraisingham
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引用次数: 25

Abstract

This paper explores an efficient and secure mechanism to partition computations across public and private machines in a hybrid cloud setting. We propose a principled framework for distributing data and processing in a hybrid cloud that meets the conflicting goals of performance, sensitive data disclosure risk and resource allocation costs. The proposed solution is implemented as an add-on tool for a Hadoop and Hive based cloud computing infrastructure. Our experiments demonstrate that the developed mechanism can lead to a major performance gain by exploiting both the hybrid cloud components without violating any pre-determined public cloud usage constraints.
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混合云中的风险感知工作负载分配
本文探讨了一种在混合云环境中跨公共和私有机器进行计算分区的高效和安全的机制。我们提出了一个原则框架,用于在混合云中分布数据和处理,以满足性能,敏感数据披露风险和资源分配成本的冲突目标。提出的解决方案是作为基于Hadoop和Hive的云计算基础设施的附加工具实现的。我们的实验表明,开发的机制可以通过利用混合云组件而不违反任何预先确定的公共云使用限制来获得主要的性能增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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