首页> 外文期刊>Proceedings of the IEEE >An Information Theoretic Framework to Analyze Molecular Communication Systems Based on Statistical Mechanics
【24h】

An Information Theoretic Framework to Analyze Molecular Communication Systems Based on Statistical Mechanics

机译:基于统计力学的分子通讯系统分析信息理论框架

获取原文
获取原文并翻译 | 示例
           

摘要

Over the past 10 years, molecular communication (MC) has established itself as a key transformative paradigm in communication theory. Inspired by chemical communications in biological systems, the focus of this discipline is on the modeling, characterization, and engineering of information transmission through molecule exchange, with immediate applications in biotechnology, medicine, ecology, and defense, among others. Despite a plethora of diverse contributions, which has been published on the subject by the research community, a general framework to study the performance of MC systems is currently missing. This paper aims at filling this gap by providing an analysis of the physical processes underlying MC, along with their information-theoretic underpinnings. In particular, a mathematical framework is proposed to define the main functional blocks in MC, supported by general models from chemical kinetics and statistical mechanics. In this framework, the Langevin equation is utilized as a unifying modeling tool for molecule propagation in MC systems, and as the core of a methodology to determine the information capacity. Diverse MC systems are classified on the basis of the processes underlying molecule propagation, and their contribution in the Langevin equation. The classifications and the systems under each category are as follows: random walk (calcium signaling, neuron communication, and bacterial quorum sensing), drifted random walk (cardiovascular system, microfluidic systems, and pheromone communication), and active transport (molecular motors and bacterial chemotaxis). For each of these categories, a general information capacity expression is derived under simplifying assumptions and subsequently discussed in light of the specific functional blocks of more complex MC systems. Finally, in light of the proposed framework, a roadmap is envisioned for the future of MC as a discipline.
机译:在过去的10年中,分子传播学(MC)已经确立了自己作为传播学理论的重要变革范式的地位。受生物系统中化学通讯的启发,该学科的重点是通过分子交换进行信息传输的建模,表征和工程设计,并立即应用于生物技术,医学,生态学和国防等领域。尽管研究界已经发表了许多关于该主题的各种各样的文章,但是目前缺少研究MC系统性能的通用框架。本文旨在通过分析MC的物理过程及其信息理论基础来填补这一空白。特别是,提出了一个数学框架来定义MC中的主要功能模块,并由化学动力学和统计力学的通用模型支持。在此框架中,Langevin方程用作在MC系统中分子传播的统一建模工具,并且是确定信息容量的方法的核心。基于分子传播的过程及其对Langevin方程的贡献,对各种MC系统进行分类。每个类别下的分类和系统如下:随机行走(钙信号,神经元通信和细菌群体感应),漂移随机行走(心血管系统,微流体系统和信息素通信)和主动运输(分子运动和细菌趋化性)。对于这些类别中的每个类别,在简化的假设下得出了通用信息容量表达式,随后根据更复杂的MC系统的特定功能块进行了讨论。最后,根据提议的框架,为MC作为一门学科的未来设想了一个路线图。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号