类人体组织作为电流耦合通信通道的实验评估

W. Tomlinson, Fabian Abarca, K. Chowdhury, M. Stojanovic, Christopher C. Yu
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引用次数: 10

摘要

最近植入式和可穿戴医疗设备的激增为实现体内网络(IBNs)铺平了道路。由于人体组织的吸收,传统的基于射频的技术在无线连接这些设备方面存在不足。另一种不同的方法被称为电耦合,它利用自然传导组织内的弱电流来实现体内通信。这项工作的重点是考虑到这种电信号通过它携带数据的传播,人体组织的通道特性。实验使用猪组织(代替实际的人体组织)进行,在100 kHz至1 MHz的频率范围内具有皮肤,脂肪和肌肉层。利用单载波BPSK调制的伪随机噪声序列,实现了一个相关的信道探测系统,实现了以下贡献:(1)信道脉冲和频率响应的测量;(2)噪声分析和容量估计;(3)结果与现有模型的比较。
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Experimental assessment of human-body-like tissue as a communication channel for galvanic coupling
The recent surge of implantable and wearable medical devices have paved the way for realizing intra-body networks (IBNs). Traditional RF-based techniques fall short in wirelessly connecting such devices owing to absorption within body tissues. A different approach is known as galvanic coupling, which employs weak electrical current within naturally conducting tissues to enable intra-body communication. This work is focused on channel characterization of the human body tissues considering the propagation of such electrical signals through it that carry data. Experiments were conducted using porcine tissue (in lieu of actual human tissue) with skin, fat and muscle layers in the frequency range of 100 kHz to 1 MHz. By utilizing single-carrier BPSK modulated Pseudorandom Noise Sequences, a correlative channel sounding system was implemented, leading to the following contributions: (1) measurements of the channel impulse and frequency response, (2) a noise analysis and capacity estimation, and (3) the comparison of results with existing models.
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