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An Intrinsic and Database-Free Authentication by Exploiting Process Variation in Back-End Capacitors

机译:利用后端电容器中的工艺变化进行内部无数据库身份验证

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Detection of counterfeit chips has emerged as a crucial concern. Physically unclonable function (PUF)-based techniques are widely used for authentication; however, these require dedicated hardware and large signature database. In this paper, we show intrinsic and database-free authentication using back-end capacitors. The discussed technique simplifies authentication setup and reduces the test cost. We show that an analog-to-digital converter (ADC) can be modified for back-end capacitor-based authentication in addition to its regular functionality; hence, a dedicated authentication module is not necessary. Moreover, since back-end capacitors are quite insensitive to temperature and aging-induced variations than transistors, the discussed technique results in a more reliable authentication than transistor PUF-based authentication. Discussed authentication scheme manifests significant resilience against power supply instability. The modifications to conventional ADC incur 3.2% power overhead and 75% active-area overhead; however, arguably, the advantages of the discussed intrinsic and database-free authentication outweigh the overheads.
机译:伪造芯片的检测已成为一个至关重要的问题。基于物理不可克隆功能(PUF)的技术已广泛用于身份验证。但是,这些需要专用的硬件和大型签名数据库。在本文中,我们展示了使用后端电容器进行内在和无数据库的身份验证。讨论的技术简化了身份验证设置并降低了测试成本。我们证明,除了其常规功能外,还可以对模数转换器(ADC)进行修改,以进行基于后端电容器的身份验证。因此,不需要专用的身份验证模块。而且,由于后端电容器比晶体管对温度和老化引起的变化不敏感,因此所讨论的技术比基于晶体管PUF的认证产生了更可靠的认证。讨论的身份验证方案具有显着的抗电源不稳定能力。对常规ADC的修改会产生3.2%的功率开销和75%的有源区域开销;但是,可以说,所讨论的固有身份验证和无数据库身份验证的优点超过了开销。

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