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A Biological Circuit Design for Modulated Parity-check Encoding in Molecular Communication

机译:分子通信中调制奇偶校验校验校验编码的生物电路设计

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Regarded as one of the future enabling technologies of the Internet of Things at the biological and nanoscale domains, Molecular Communication (MC) promises to enable applications in healthcare, environmental protection, and bioremediation, amongst others. Since MC is directly inspired by communication processes in biological cells, the engineering of biological circuits through cells' genetic code manipulation, which enables access to the cells' information processing abilities, is a candidate technology for the future realization of MC components. In this paper, inspired by previous research on channel coding schemes for MC and biological circuits for cell communications, a joint encoder and modulator design is proposed for the transmission of cellular information through signaling molecules. In particular, the information encoding and modulation are based on a binary parity check scheme, and they are implemented by interconnecting biological circuit components based on gene expression and mass action reactions. Each component is mathematically modeled and tuned according to the desired output. The implementation of the biological circuit in a simulation environment is then presented along with the corresponding numerical results, which validate the proposed design by showing agreement with an ideal encoding and modulator scheme.
机译:被视为生物和纳米级域的未来互联网技术的未来技术之一,分子通信(MC)承诺,以便在医疗保健,环境保护和生物修复中实现应用。由于MC由生物细胞中的通信过程直接启发,因此通过细胞的遗传代码操纵来实现生物电路的工程,这使得能够访问电池的信息处理能力,是用于未来实现MC组件的候选技术。在本文中,通过先前研究MC和生物电路的信道编码方案的研究,提出了通过信号分子传输蜂窝信息的联合编码器和调制器设计。特别地,信息编码和调制基于二元奇偶校验方案,并且它们是通过基于基因表达和大规模作用反应而互连的生物电路分量来实现。每个组件根据所需输出进行数学建模和调整。然后呈现在模拟环境中的生物电路的实现以及相应的数值结果,该数值结果通过与理想的编码和调制器方案显示协议来验证所提出的设计。

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