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Trustworthy proofs for sensor data using FPGA based physically unclonable functions

机译:使用基于FPGA的物理不可分类功能的传感器数据值得信赖的证据

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The Internet of Things (IoT) is envisaged to consist of billions of connected devices coupled with sensors which generate huge volumes of data enabling control-and-command in this paradigm. However, integrity of this data is of utmost concern, and is promisingly addressed leveraging the inherent unreliability of Physically Unclonable Functions (PUFs) w.r.t. ambient parameter variations, using the concept of Virtual Proofs (VPs). Advantage of these protocols is that they do not use explicit keys and aim at proving the authenticity of the sensor. Since the existing PUF-based protocols do not use the sensor data as a part of challenge (i.e. input) to PUFs, there is no guarantee of uniqueness of PUF's challenge-response behavior over multiple levels of ambient parameters. Few of these protocols needs to sequential search in the challenge-response database. To alleviate these issues, we develop a new class of authenticated sensing protocols where the sensor data is combined with the external challenge by utilizing the Strict Avalanche Criterion of the PUF. We validate the proposed protocol through actual experiments on FPGA using Double Arbiter PUFs (DAPUFs), which are implemented with superior uniformity, uniqueness, and reliability on Xilinx Artix-7 FPGAs. According to the FPGA-based validation, the proposed protocol with DAPUF can be effectively used to authenticate wide variations of temperature from -20°C to 80°C.
机译:物联网(IOT)被设想由数十亿连接设备组成,该连接设备耦合,传感器,该传感器产生巨大的数据,在该范例中能够启用控制和命令。然而,这种数据的完整性至关重要,并且承诺利用物理上不可渗透功能(PUFS)W.R.T的固有不可靠性。环境参数变体,使用虚拟校样(VPS)的概念。这些协议的优点是它们不使用显式键并旨在证明传感器的真实性。由于现有的基于PUF的协议不会将传感器数据作为挑战(即输入)的一部分,因此在多级环境参数上没有保证PUF挑战 - 响应行为的唯一性。很少有协议需要在挑战 - 响应数据库中顺序搜索。为了减轻这些问题,我们开发了一类新的经过认证的传感协议,其中传感器数据通过利用PUF的严格雪崩标准与外部挑战相结合。我们通过使用双仲裁PUF(DAPUF)对FPGA上的实际实验进行验证,这些协议使用双仲裁仪(DAPUF),其在Xilinx Artix-7 FPGA上具有卓越的均匀性,唯一性和可靠性。根据基于FPGA的验证,可以有效地使用DAPUF的所提出的协议来验证-20°C至80°C的宽温度的宽变化。

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