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One-time-pad cipher algorithm based on confusion mapping and DNA storage technology

机译:一种基于混淆映射和DNA存储技术的一次性焊盘密码算法

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In order to solve the problems of low computational security in the encoding mapping and difficulty in practical operation of biological experiments in DNA-based one-time-pad cryptography, we proposed a one-time-pad cipher algorithm based on confusion mapping and DNA storage technology. In our constructed algorithm, the confusion mapping methods such as chaos map, encoding mapping, confusion encoding table and simulating biological operation process are used to increase the key space. Among them, the encoding mapping and the confusion encoding table provide the realization conditions for the transition of data and biological information. By selecting security parameters and confounding parameters, the algorithm realizes a more random dynamic encryption and decryption process than similar algorithms. In addition, the use of DNA storage technologies including DNA synthesis and high-throughput sequencing ensures a viable biological encryption process. Theoretical analysis and simulation experiments show that the algorithm provides both mathematical and biological security, which not only has the difficult advantage of cracking DNA biological experiments, but also provides relatively high computational security.
机译:为了解决编码映射中的低计算安全问题和基于DNA的一次性垫加密中的生物实验的实际操作中的难度,我们提出了一种基于混淆映射和DNA存储的一次性焊盘密码算法技术。在我们构造的算法中,使用混乱映射方法,例如混沌映射,编码映射,混淆编码表和模拟生物操作过程来增加关键空间。其中,编码映射和混淆编码表提供了数据和生物信息转换的实现条件。通过选择安全参数和混淆参数,该算法实现了比类似算法更随随机的动态加密和解密过程。此外,使用DNA存储技术,包括DNA合成和高通量测序可确保可行的生物加密过程。理论分析和仿真实验表明,该算法提供了数学和生物安全性,这不仅具有破解DNA生物实验的难度优势,而且还提供了相对高的计算安全性。

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