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Data-Driven Control and Data-Poisoning attacks in Buildings: the KTH Live-In Lab case study

机译:建筑物中的数据驱动控制和数据中毒攻击:Kth Live-in Lab案例研究

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This work investigates the feasibility of using input-output data-driven control techniques for building control and their susceptibility to data-poisoning techniques. The analysis is performed on a digital replica of the KTH Live- in Lab, a non-linear validated model representing one of the KTH Live-in Lab building testbeds. This work is motivated by recent trends showing a surge of interest in using data- based techniques to control cyber-physical systems. We also analyze the susceptibility of these controllers to data poisoning methods, a particular type of machine learning threat geared towards finding imperceptible attacks that can undermine the performance of the system under consideration. We consider the Virtual Reference Feedback Tuning (VRFT), a popular data- driven control technique, and show its performance on the KTH Live-In Lab digital replica. We then demonstrate how poisoning attacks can be crafted and illustrate the impact of such attacks. Numerical experiments reveal the feasibility of using data-driven control methods for finding efficient control laws. However, a subtle change in the datasets can significantly deteriorate the performance of VRFT.
机译:这项工作调查了使用输入输出数据驱动控制技术来建立控制的可行性及其对数据中毒技术的敏感性。该分析是对实验室中的Kth Live-Live的数字复制品进行了分析,该模型代表了kth Live-in Lab建筑物测试平台的非线性验证模型。这项工作是由最近趋势的激励,显示利用基于数据的技术来控制网络物理系统的兴趣激增。我们还分析了这些控制器对数据中毒方法的敏感性,特定类型的机器学习威胁旨在找到可能破坏所考虑的系统性能的难以察觉的攻击。我们考虑虚拟参考反馈调谐(VRFT),流行的数据驱动控制技术,并在Kth Live-in Lab数字复制品上显示其性能。然后,我们展示了如何制作中毒攻击,并说明这种攻击的影响。数值实验揭示了使用数据驱动控制方法来寻找有效控制法的可行性。然而,数据集中的微妙变化可以显着恶化VRFT的性能。

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