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Maximum-likelihood decoding of device-specific multi-bit symbols for reliable key generation

机译:特定于设备的多位符号的最大似然解码可实现可靠的密钥生成

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We present a PUF key generation scheme that uses the provably optimal method of maximum-likelihood (ML) detection on symbols derived from PUF response bits. Each device forms a noisy, device-specific symbol constellation, based on manufacturing variation. Each detected symbol is a letter in a codeword of an error correction code, resulting in non-binary codewords. We present a three-pronged validation strategy: i. mathematical (deriving an optimal symbol decoder), ii. simulation (comparing against prior approaches), and iii. empirical (using implementation data). We present simulation results demonstrating that for a given PUF noise level and block size (an estimate of helper data size), our new symbol-based ML approach can have orders of magnitude better bit error rates compared to prior schemes such as block coding, repetition coding, and threshold-based pattern matching, especially under high levels of noise due to extreme environmental variation. We demonstrate environmental reliability of a ML symbol-based soft-decision error correction approach in 28nm FPGA silicon, covering -65°C to 105°C ambient (and including 125°C junction), and with 128bit key regeneration error probability ≤ 1 ppm.
机译:我们提出了一种PUF密钥生成方案,该方案对从PUF响应位派生的符号使用最大似然(ML)检测的可证明最优方法。每个设备根据制造差异形成一个嘈杂的,特定于设备的符号星座。每个检测到的符号是纠错码的码字中的字母,从而导致非二进制码字。我们提出了一个三管齐下的验证策略:数学的(推导最佳符号解码器); ii。模拟(与以前的方法比较),以及iii。经验的(使用实施数据)。我们提供的仿真结果表明,对于给定的PUF噪声水平和块大小(辅助数据大小的估计值),与基于现有方案(如块编码,重复)的新方案相比,我们新的基于符号的ML方法的误码率要高几个数量级。编码和基于阈值的模式匹配,尤其是在由于极端环境变化而导致的高噪声水平下。我们演示了在28nm FPGA芯片上基于ML符号的软判决错误校正方法的环境可靠性,该方法覆盖-65°C至105°C的环境(包括125°C结点),并且128位密钥再生错误概率≤1 ppm 。

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