论文标题

一只穿着绵羊衣服的狼:在流行音乐的伪装下散布致命的病原体

A Wolf in Sheep's Clothing: Spreading Deadly Pathogens Under the Disguise of Popular Music

论文作者

Barua, Anomadarshi, Achamyeleh, Yonatan Gizachew, Faruque, Mohammad Abdullah Al

论文摘要

负压室(NPR)是生物安全水平(BSL)或传染性控制医院的生物安全水平(BSL)的必不可少的要求,以防止致命的病原体从设施中泄漏出来。 NPR相对于外部参考空间保持了负压,因此Microbes包含在NPR内部。如今,建筑物管理系统(BMS)使用差异压传感器(DPS)来控制和监视NPR中的负压。本文通过以谐振频率欺骗DPS来证明对NPR的无创和隐形攻击。我们的贡献是:(1)我们表明,NPR中使用的DPS通常在听觉范围内具有共鸣频率。 (2)我们使用此发现来设计恶意音乐,以在DPSS中引起共鸣,从而导致DPS正常压力读数的过度拍摄。 (3)我们展示了DPSS中的共振如何欺骗BMS,以使NPR将其负压转换为正压力,从而导致NPR的致命微生物的潜在\ textit {elec}。我们对来自5个不同制造商的8个DPS进行实验,以评估其共鸣频率考虑到采样管长度并在6个DPS中找到共振。当不存在采样管时,我们可以从$ \ sim $ 7 cm的距离上实现2.5 pa的变化,并且从$ \ sim $ 2.5 cm的距离从1 m采样管长度。我们还引入了一种间隔时间变化方法,以对负压进行对抗控制,并表明\ textit {forged}压力可以在12-33 pa之内变化。我们的攻击也能够同时攻击多个NPR。此外,我们在位于匿名生物搜索设施中的现实世界NPR上展示了我们的攻击,该机构已获得FDA批准并遵循CDC指南。我们还提供对策以防止攻击。

A Negative Pressure Room (NPR) is an essential requirement by the Bio-Safety Levels (BSLs) in biolabs or infectious-control hospitals to prevent deadly pathogens from being leaked from the facility. An NPR maintains a negative pressure inside with respect to the outside reference space so that microbes are contained inside of an NPR. Nowadays, differential pressure sensors (DPSs) are utilized by the Building Management Systems (BMSs) to control and monitor the negative pressure in an NPR. This paper demonstrates a non-invasive and stealthy attack on NPRs by spoofing a DPS at its resonant frequency. Our contributions are: (1) We show that DPSs used in NPRs typically have resonant frequencies in the audible range. (2) We use this finding to design malicious music to create resonance in DPSs, resulting in an overshooting in the DPS's normal pressure readings. (3) We show how the resonance in DPSs can fool the BMSs so that the NPR turns its negative pressure to a positive one, causing a potential \textit{leak} of deadly microbes from NPRs. We do experiments on 8 DPSs from 5 different manufacturers to evaluate their resonant frequencies considering the sampling tube length and find resonance in 6 DPSs. We can achieve a 2.5 Pa change in negative pressure from a $\sim$7 cm distance when a sampling tube is not present and from a $\sim$2.5 cm distance for a 1 m sampling tube length. We also introduce an interval-time variation approach for an adversarial control over the negative pressure and show that the \textit{forged} pressure can be varied within 12 - 33 Pa. Our attack is also capable of attacking multiple NPRs simultaneously. Moreover, we demonstrate our attack at a real-world NPR located in an anonymous bioresearch facility, which is FDA approved and follows CDC guidelines. We also provide countermeasures to prevent the attack.

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