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Combating the Bandits in the Cloud: A Moving Target Defense Approach

机译:打击云中的匪徒:移动目标防御方法

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Security and privacy in cloud computing are critical components for various organizations that depend on the cloud in their daily operations. Customers' data and the organizations' proprietary information have been subject to various attacks in the past. In this paper, we develop a set of Moving Target Defense (MTD) strategies that randomize the location of the Virtual Machines (VMs) to harden the cloud against a class of Multi-Armed Bandit (MAB) policy-based attacks. These attack policies capture the behavior of adversaries that seek to explore the allocation of VMs in the cloud and exploit the ones that provide the highest rewards (e.g., access to critical datasets, ability to observe credit card transactions, etc). We assess through simulation experiments the performance of our MTD strategies, showing that they can make MAB policy-based attacks no more effective than random attack policies. Additionally, we show the effects of critical parameters - such as discount factors, the time between randomizing the locations of the VMs and variance in the rewards obtained - on the performance of our defenses. We validate our results through simulations and a real OpenStack system implementation in our lab to assess migration times and down times under different system loads.
机译:云计算中的安全性和隐私是针对依赖于日常运营中云的各种组织的关键组件。客户的数据和组织的专有信息已经受到过去的各种攻击。在本文中,我们开发了一组移动的目标防御(MTD)策略,该策略随机化虚拟机(VM)的位置,以硬化云对一类基于多武装匪盗(MAB)的基于策略的攻击。这些攻击政策捕获了探索云中VM分配的对手的行为,利用提供最高奖励的VM(例如,访问关键数据集,观察信用卡交易等的能力)。我们通过仿真实验评估我们的MTD策略的表现,表明他们可以使基于MAB的政策攻击不比随机攻击政策更有效。此外,我们展示了关键参数的影响 - 例如折扣因素,随机化VMS的位置与获得的奖励中的差异之间的时间 - 对我们的防御性的表现。我们通过模拟和实验室中的真实OpenStack系统实现验证我们的结果,以在不同的系统负载下评估迁移时间和下降时间。

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