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Security Verification of Artificial Neural Networks Used to Error Correction in Quantum Cryptography

机译:Quantum密码校正的人工神经网络的安全验证

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Error correction in quantum cryptography based on artificial neural networks is a new and promising solution. In this paper the security verification of this method is discussed and results of many simulations with different parameters are presented. The test scenarios assumed partially synchronized neural networks, typical for error rates in quantum cryptography. The results were also compared with scenarios based on the neural networks with random chosen weights to show the difficulty of passive attacks.
机译:基于人工神经网络的量子密码术纠错是一种新的和有前途的解决方案。在本文中,讨论了该方法的安全验证,并提出了许多具有不同参数的模拟的结果。测试场景假设部分同步的神经网络,Quantum密码中的误差率典型。还将结果与基于随机所选权重的神经网络的情景进行了比较,以显示被动攻击的难度。

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