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用于芯片级篡改检测的近场微波传感

Near-Field Microwave Sensing for Chip-Level Tamper Detection.

作者信息

Saadat Safa Maryam, Tajik Shahin

机构信息

Electrical and Computer Engineering Department, Worcester Polytechnic Institute, Worcester, MA 01609, USA.

出版信息

Sensors (Basel). 2025 Jul 5;25(13):4188. doi: 10.3390/s25134188.

Abstract

Stealthy chip-level tamper attacks, such as hardware Trojan insertions or security-critical circuit modifications, can threaten modern microelectronic systems' security. While traditional inspection and side-channel methods offer potential for tamper detection, they may not reliably detect all forms of attacks and often face practical limitations in terms of scalability, accuracy, or applicability. This work introduces a non-invasive, contactless tamper detection method employing a complementary split-ring resonator (CSRR). CSRRs, which are typically deployed for non-destructive material characterization, can be placed on the surface of the chip's package to detect subtle variations in the impedance of the chip's power delivery network (PDN) caused by tampering. The changes in the PDN's impedance profile perturb the local electric near field and consequently affect the sensor's impedance. These changes manifest as measurable variations in the sensor's scattering parameters. By monitoring these variations, our approach enables robust and cost-effective physical integrity verification requiring neither physical contact with the chips or printed circuit board (PCB) nor activation of the underlying malicious circuits. To validate our claims, we demonstrate the detection of various chip-level tamper events on an FPGA manufactured with 28 nm technology.

摘要

诸如硬件木马植入或对安全关键电路进行修改等隐蔽的芯片级篡改攻击,会威胁现代微电子系统的安全。虽然传统的检测和侧信道方法为篡改检测提供了可能性,但它们可能无法可靠地检测到所有形式的攻击,并且在可扩展性、准确性或适用性方面常常面临实际限制。这项工作介绍了一种采用互补开口谐振环(CSRR)的非侵入式、非接触式篡改检测方法。通常用于无损材料表征的CSRR,可以放置在芯片封装的表面,以检测由篡改导致的芯片供电网络(PDN)阻抗的细微变化。PDN阻抗分布的变化会扰乱局部电近场,从而影响传感器的阻抗。这些变化表现为传感器散射参数的可测量变化。通过监测这些变化,我们的方法能够实现强大且经济高效的物理完整性验证,既无需与芯片或印刷电路板(PCB)进行物理接触,也无需激活潜在的恶意电路。为了验证我们的说法,我们展示了在采用28纳米技术制造的FPGA上检测各种芯片级篡改事件的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ea8/12252523/8924de896845/sensors-25-04188-g001.jpg

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