Microfluidic Trojan Design in Flow-based Biochips

Mohammed Shayan, Sukanta Bhattacharjee, Yong-Ak Song, K. Chakrabarty, R. Karri
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引用次数: 5

Abstract

Microfluidic technologies find application in various safety-critical fields such as medical diagnostics, drug research, and cell analysis. Recent work has focused on security threats to microfluidic-based cyberphysical systems and defenses. So far the threat analysis has been limited to the cases of tampering with control software/hardware, which is common to most cyberphysical control systems in general; in a sense, such an approach is not exclusive to microfluidics. In this paper, we present a stealthy attack paradigm that uses characteristics exclusive to the microfluidic devices - a microfluidic trojan. The proposed trojan payload is a valve whose height has been perturbed to vary its pressure response. This trojan can be triggered in multiple ways based on time or specific operations. These triggers can occur naturally in a bioassay or added into the controlling software. We showcase the trojan application in carrying out practical attacks -contamination, parameter-tampering and denial-of-service - on a real-life bioassay implementation. Further, we present guidelines to launch stealthy attacks and to counter them.
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流基生物芯片中的微流控木马设计
微流控技术应用于各种安全关键领域,如医学诊断、药物研究和细胞分析。最近的工作集中在对基于微流体的网络物理系统和防御的安全威胁上。到目前为止,威胁分析仅限于篡改控制软件/硬件的情况,这在大多数网络物理控制系统中是常见的;从某种意义上说,这种方法并不是微流体所独有的。在本文中,我们提出了一种利用微流控装置特有特征的隐形攻击范式-微流控木马。所提出的特洛伊有效载荷是一个阀门,其高度被扰动以改变其压力响应。该木马可以根据时间或特定操作以多种方式触发。这些触发因素可以在生物测定中自然发生,也可以添加到控制软件中。我们展示了特洛伊木马在执行实际攻击中的应用-污染,参数篡改和拒绝服务-在现实生活中的生物测定实施。此外,我们提出了发动隐形攻击和反击的指导方针。
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