Analysis on Secure and Effective Applications of a DNA-Based Cryptosystem

M. Hirabayashi, A. Nishikawa, Fumiaki Tanaka, M. Hagiya, H. Kojima, K. Oiwa
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引用次数: 15

Abstract

Unbreakable encryption is theoretically possible but perfect operation is difficult. It is expected that DNA-based cryptography provides new solutions to realize a perfect secrecy system. For example, the self-assembly process in DNA logical computation can generate physical random numbers for encryption keys. Furthermore DNA-based steganography offers a unique method to keep the key and the cipher in safe. In this paper we describe a theoretical background on perfect secrecy based on Shannon entropy and present an empirical analysis on effectiveness of a DNA-based cryptosystem using a DNA motif called "triple crossover tile." In DNA computation, troublesome procedures to read out the calculation results prevent the realization of practical applications. To solve this problem, we already presented the idea of a direct readout method called "tile sequencing" with atomic force microscopy image analysis. "Tile sequencing" makes it possible to extract random calculation results, which is difficult to read out by existing methods. Here we discuss the appropriate application of the DNA cryptosystem taking advantage of "tile sequencing." Although there are still problems to be solved, the separation storage of specific information, such as medical records, and personal data using personal identifiers encrypted by DNA cryptography will be one of promising applications.
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基于dna的密码系统安全有效应用分析
牢不可破的加密在理论上是可能的,但完美的操作是困难的。期望基于dna的密码学为实现完善的保密系统提供新的解决方案。例如,DNA逻辑计算中的自组装过程可以为加密密钥生成物理随机数。此外,基于dna的隐写技术为密钥和密码的安全提供了一种独特的方法。在本文中,我们描述了基于香农熵的完全保密的理论背景,并对使用称为“三重交叉块”的DNA基序的基于DNA的密码系统的有效性进行了实证分析。在DNA计算中,计算结果的读出过程繁琐,阻碍了实际应用的实现。为了解决这个问题,我们已经提出了一种直接读出方法的想法,称为原子力显微镜图像分析的“瓷砖测序”。“Tile sequencing”使得提取随机计算结果成为可能,这是现有方法难以读取的。在这里,我们讨论利用“瓦片测序”的DNA密码系统的适当应用。虽然仍有问题有待解决,但使用DNA加密的个人标识符分离存储特定信息,如医疗记录和个人数据,将是有前途的应用之一。
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