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Towards Post-Quantum Cryptography Using Thermal Noise Theory and True Random Numbers Generation

机译:使用热噪声理论和真正随机数产生后量子密码学

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The advent of quantum computers and algorithms challenges the semantic security of symmetric and asymmetric cryptosystems. Thus, the implementation of new cryptographic primitives is essential. They must follow the breakthroughs and properties of quantum calculators which make vulnerable existing cryptosystems. In this paper, we propose a random number generation model based on evaluation of the thermal noise power of the volume elements of an electronic system with a volume of 58.83 cm~(3). We prove through the sampling of the temperature of each volume element that it is difficult for an attacker to carry out an exploit. In 12 seconds, we generate for 7 volume elements, a stream of randomly generated keys of 187 digits that will be transmitted from source to destination through the properties of quantum cryptography.
机译:量子计算机和算法的出现挑战对称和非对称密码系统的语义安全性。因此,新的加密基元的实施至关重要。他们必须遵循量子计算器的突破和性质,这使得易受伤害的现有密码系统。在本文中,我们提出了一种随机数产生模型,基于评估电子系统的体积元素的热噪声功率,体积为58.83cm〜(3)。我们通过对每个卷元素的温度的采样证明,攻击者难以执行漏洞。在12秒内,我们生成7个卷元素,通过量子密码术的属性从源传输到目的地的187位的随机生成的键流。

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