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首页> 外文期刊>Communications Surveys & Tutorials, IEEE >Comprehensive Survey of Galvanic Coupling and Alternative Intra-Body Communication Technologies
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Comprehensive Survey of Galvanic Coupling and Alternative Intra-Body Communication Technologies

机译:电流耦合和体内替代通讯技术的综合调查

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Fundamental understanding of the processes that affect the state and well being of the human body continues to be a challenging frontier. Recent technological developments point toward the possibility of implanting sensors inside the body, thus enabling in-situ data gathering and real-time actuation with the transmission of the sensed data to other implants as well as external computational clouds. This paper aims to survey and compare the existing methods for achieving intra-body communication (IBC) covering the methods of galvanic coupling (waveguide-based), capacitive coupling (electric field-based), ultrasound (acoustic-based) and magnetic resonant coupling (magnetic field-based). The performance of each method is evaluated in terms of its physical layer characteristics, including operating frequency range, attenuation effects within the body, channel modeling methods, power consumption, achievable data rates, communication distance, and safety limits under prolonged signal exposure. Based on this metric-driven study, we identify specific scenarios where one or more of these different IBC methods are better suited. For the specific case of galvanic coupling, we provide select system designs, experimental results from a custom-designed testbed and target applications that are more appropriate for this method of IBC. To the best of our knowledge, this is the first work that encapsulates the state of the art and current research trends for several different types of IBC solutions, a topic that promises to revolutionize the future of healthcare.
机译:对影响人体状态和健康的过程的基本理解仍然是一个具有挑战性的领域。最近的技术发展指出了将传感器植入体内的可能性,从而能够通过将感测到的数据传输到其他植入物以及外部计算云来进行原位数据收集和实时驱动。本文旨在调查和比较现有的实现体内通信(IBC)的方法,包括电耦合(基于波导),电容耦合(基于电场),超声(基于声波)和磁共振耦合的方法(基于磁场)。每种方法的性能均根据其物理层特性进行评估,包括工作频率范围,体内衰减效应,通道建模方法,功耗,可达到的数据速率,通信距离以及长时间信号暴露下的安全极限。基于这项基于指标的研究,我们确定了特定的场景,在这些场景中,一种或多种这些不同的IBC方法更适合。对于电流偶合的特定情况,我们提供选择的系统设计,来自定制设计的测试台的实验结果以及更适合这种IBC方法的目标应用。据我们所知,这是第一篇囊括了几种不同类型IBC解决方案的技术水平和当前研究趋势的工作,这一主题有望彻底改变医疗保健的未来。

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