Modelling Multilayer Communication Channel in Terahertz Band for Medical Applications

Essraa Hesham Mahmoud, Mohammed S. Gadelrab, Khaled Elsayed, A. Sallam
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引用次数: 2

Abstract

In this work we present a multi-layer channel model for terahertz communication that incorporates both layers of human body tissues and textile layers. Many research works tackled communication channel modelling in human body alone while some other research focused on textile characterization/modelling alone. There is a real gap in connecting these different models. To investigate this, a multi-layer channel model for terahertz communication is developed, this model assumes external textile layer stacked over layers of human body tissues. The electromagnetic properties of the different layers are extracted from previous works that used time domain spectroscopy (TDS) in the terahertz band to characterize each of the considered layers. The model is implemented as a flexible MATLAB/Octave program that enables the simulation of layers with either fixed or random depths. This paper aims to pave the way to connecting patients’ in-body nano-nodes with off-body (on-cloth) nano-nodes by building such a combined channel model. This helps in many applications especially in the medical field. For example, having connected nano-nodes can help in diagnosing diseases, monitoring health by sending information to the external environment, treatment (e.g., increasing or decreasing a certain dose depending on the monitoring), etc. The obtained results show how the THz signal can be affected when it propagates through heterogeneous mediums (i.e., human body tissues and textile). Various types of path-loss has been calculated for this purpose and verified by comparison with results from previous research on separate models of human body and textile.
医疗应用中太赫兹多层通信信道建模
在这项工作中,我们提出了一个太赫兹通信的多层通道模型,该模型结合了人体组织层和纺织品层。许多研究工作仅针对人体的通信通道建模,而另一些研究仅关注纺织品的表征/建模。在连接这些不同的模型方面确实存在差距。为了研究这一点,建立了一个太赫兹通信的多层信道模型,该模型假设外部纺织品层堆叠在人体组织层上。不同层的电磁特性是从以前的工作中提取的,这些工作使用太赫兹波段的时域光谱(TDS)来表征每个考虑的层。该模型是作为一个灵活的MATLAB/Octave程序实现的,可以模拟固定或随机深度的层。本文旨在通过构建这种组合通道模型,为患者体内纳米节点与体外(布上)纳米节点的连接铺平道路。这有助于许多应用,特别是在医疗领域。例如,连接纳米节点有助于诊断疾病、通过向外部环境发送信息来监测健康状况、治疗(例如,根据监测情况增加或减少某种剂量)等。所得结果显示太赫兹信号在异质介质(即人体组织和纺织品)中传播时是如何受到影响的。为此,我们计算了各种类型的路径损失,并与以往在人体和纺织品的单独模型上的研究结果进行了对比验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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