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3D CUBE Algorithm for the Key Generation Method: Applying Deep Neural Network Learning-Based

机译:关键生成方法的3D立方体算法:应用深度神经网络学习

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摘要

Current encryption systems are run with a hybrid mode in which symmetric and asymmetric key methods are mixed. This hybrid mode is devised to employ the fast processing speed of the symmetric key while circumventing the difficulty of providing services due to computational complexity of the asymmetric key method by limiting its use to secured key exchange. To implement a secured symmetric key-based cryptographic system to circumvent the crack problem due to the emergence of quantum computers in asymmetric key exchanges, the problem of sharing a key transferred in the most secure manner should be solved while symmetric keys in use are kept up-to-date. This paper proposes a three-dimensional (3D) cube algorithm that can be used by creating the up-to-date key in a symmetric key encryption system to provide security resistance in a quantum computer environment. More specifically, it presents a solution to the secured key sharing method that can minimize the damage due to the pre-shared key (PSK) leakage. This is done by using the method of inducing the symmetric key creation based on deep neural network learning without sharing the PSK between systems to securely maintain the key while creating and using the key that is variably used through the symmetric key encryption system of the 3D cube algorithm. Thus, the proposed algorithm secures confidentiality and integrity of data transferred over a network because information that can be obtained by malicious attackers is small (because the symmetric key used in encryption and decryption is induced without exchanging the PSK with the application of deep neural network learning).
机译:当前加密系统以混合模式运行,其中混合对称和非对称密钥方法。该混合模式设计为​​采用对称键的快速处理速度,同时通过限制其用途来避免由于不对称密钥方法的计算复杂性来提供服务的难度。为了实现基于安全的对称密钥的加密系统来避免裂缝问题,因为在不对称关键交换中的量子计算机的出现,应该解决以最安全的方式传输的密钥的问题应该在使用中的对称键保持-迄今为止。本文提出了一种三维(3D)立方体算法,可以通过在对称密钥加密系统中创建最新键来提供昆腾计算机环境中的安全阻力。更具体地说,它提出了一种解决方案,用于安全密钥共享方法,可以最小化由于预共享密钥(PSK)泄漏而导致的损坏。这是通过使用基于深度神经网络学习的对称密钥创建的方法来完成,而不在系统之间共享PSK以在创建和使用可变通过3D立方体的对称密钥加密系统可变地使用的键的同时安全地维护键算法。因此,所提出的算法在网络上确定了传输的数据的机密性和完整性,因为恶意攻击者可以获得的信息很小(因为在未在未交换PSK的情况下诱导加密和解密中使用的对称密钥随着深度神经网络学习而被诱导而不交换PSK )。

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