时变电场下的电泳分子通信

IF 2.9 4区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Nano Communication Networks Pub Date : 2022-03-01 DOI:10.1016/j.nancom.2021.100381
Sunghwan Cho , Thomas C. Sykes , Justin P. Coon , Alfonso A. Castrejón-Pita
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引用次数: 3

摘要

本文研究了一种新的电泳分子通信框架,该框架利用时变电场,诱导时变分子速度,进而提高通信性能。对于正弦场,我们指定了有利的信号参数(例如,相位和频率),这些参数可以产生出色的通信链路性能。我们还通过制定适当的成本函数和求解欧拉-拉格朗日方程,解析推导出优化的场函数。在我们的设置中,场强与分子速度成正比;我们通过求解给定时变电场(强迫函数)的Basset–Boussinesq–Oseen方程来验证这一假设,并考察其对系统实际物理参数化的影响。我们的分析和蒙特卡罗模拟结果表明,与恒定场基准相比,所提出的时变方法可以显著增加预期在接收器处观察到的携带信息的分子的数量,并降低误码率。
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Electrophoretic molecular communication with time-varying electric fields

This article investigates a novel electrophoretic molecular communication framework that utilizes a time-varying electric field, which induces time-varying molecule velocities and in turn improves communication performance. For a sinusoidal field, we specify favorable signal parameters (e.g., phase and frequency) that yield excellent communication-link performance. We also analytically derive an optimized field function by formulating an appropriate cost function and solving the Euler–Lagrange equation. In our setup, the field strength is proportional to the molecular velocity; we verify this assumption by solving the Basset–Boussinesq–Oseen equation for a given time-varying electric field (forcing function) and examining its implications for practical physical parameterizations of the system. Our analysis and Monte-Carlo simulation results demonstrate that the proposed time-varying approach can significantly increase the number of information-carrying molecules expected to be observed at the receiver and reduce the bit-error probability compared to the constant field benchmark.

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来源期刊
Nano Communication Networks
Nano Communication Networks Mathematics-Applied Mathematics
CiteScore
6.00
自引率
6.90%
发文量
14
期刊介绍: The Nano Communication Networks Journal is an international, archival and multi-disciplinary journal providing a publication vehicle for complete coverage of all topics of interest to those involved in all aspects of nanoscale communication and networking. Theoretical research contributions presenting new techniques, concepts or analyses; applied contributions reporting on experiences and experiments; and tutorial and survey manuscripts are published. Nano Communication Networks is a part of the COMNET (Computer Networks) family of journals within Elsevier. The family of journals covers all aspects of networking except nanonetworking, which is the scope of this journal.
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