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Run-length encoding graphic rules biochemically editable designs and steganographical numeric data embedment for DNA-based cryptographical coding system

机译:行程编码图形规则可生物化学编辑的设计以及基于DNA的密码编码系统的隐写数字数据嵌入

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摘要

There have been a wide variety of approaches for handling the pieces of DNA as the “unplugged” tools for digital information storage and processing, including a series of studies applied to the security-related area, such as DNA-based digital barcodes, water marks and cryptography. In the present article, novel designs of artificial genes as the media for storing the digitally compressed data for images are proposed for bio-computing purpose while natural genes principally encode for proteins. Furthermore, the proposed system allows cryptographical application of DNA through biochemically editable designs with capacity for steganographical numeric data embedment. As a model case of image-coding DNA technique application, numerically and biochemically combined protocols are employed for ciphering the given “passwords” and/or secret numbers using DNA sequences. The “passwords” of interest were decomposed into single letters and translated into the font image coded on the separate DNA chains with both the coding regions in which the images are encoded based on the novel run-length encoding rule, and the non-coding regions designed for biochemical editing and the remodeling processes revealing the hidden orientation of letters composing the original “passwords.” The latter processes require the molecular biological tools for digestion and ligation of the fragmented DNA molecules targeting at the polymerase chain reaction-engineered termini of the chains. Lastly, additional protocols for steganographical overwriting of the numeric data of interests over the image-coding DNA are also discussed.
机译:有各种各样的方法来处理DNA片段,作为数字信息存储和处理的“即插即用”工具,包括针对安全相关领域的一系列研究,例如基于DNA的数字条形码,水印。和密码学。在本文中,出于生物计算的目的,提出了人工基因作为存储图像数字压缩数据的介质的新颖设计,而天然基因主要编码蛋白质。此外,提出的系统允许通过具有隐写数字数据嵌入能力的生物化学可编辑设计对DNA进行密码学应用。作为图像编码DNA技术应用的典范案例,采用了数字和生化相结合的协议,使用DNA序列对给定的“密码”和/或秘密数字进行加密。感兴趣的“密码”被分解为单个字母,并转换为在单独的DNA链上编码的字体图像,其中包含基于新颖游程编码规则对图像进行编码的编码区域和非编码区域设计用于生化编辑和重塑过程,揭示了组成原始“密码”的字母的隐藏方向。后面的过程需要分子生物学工具来消化和连接靶向DNA的聚合酶链反应工程末端的片段化DNA分子。最后,还讨论了用于在图像编码DNA上对感兴趣的数字数据进行隐写覆盖的其他协议。

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