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Medium Access Control and Rate Adaptation for Ultrasonic Intrabody Sensor Networks

机译:超声波体内传感器网络的介质访问控制和速率适配

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摘要

The use of wirelessly internetworked miniaturized biomedical devices is promising a significant leap forward in medical treatment of many pervasive diseases. Recognizing the limitations of traditional radio-frequency wireless communications in interconnecting devices within the human body, in this paper, we propose for the first time to develop network protocols for implantable devices based on ultrasonic transmissions. We start off by assessing the theoretical feasibility of using ultrasonic waves in human tissues and by deriving an accurate channel model for ultrasonic intrabody communications. Then, we propose a new ultrasonic transmission and multiple access technique, which we refer to as Ultrasonic WideBand (UsWB). UsWB is based on the idea of transmitting information bits spread over very short pulses following a time-hopping pattern. The short impulse duration results in limited reflection and scattering effects, and the low duty cycle reduces the impact of thermal and mechanical effects, which may be detrimental for human health. We then develop a multiple access technique with distributed control to enable efficient simultaneous access by mutually interfering devices based on minimal and localized information exchange and on measurements at the receiver only. Finally, we demonstrate the performance of UsWB through a multiscale simulator that models the proposed communication system at the acoustic wave level, at the physical (bit) level, and at the network (packet) level. We also validate the simulation results by comparing them to experimental results obtained with a software-defined testbed.
机译:无线互联的微型生物医学设备的使用有望在许多普遍疾病的医学治疗中取得重大飞跃。考虑到传统射频无线通信在人体内部互连设备中的局限性,在本文中,我们首次建议开发基于超声传输的可植入设备的网络协议。我们首先评估在人体组织中使用超声波的理论可行性,并得出用于超声体内通信的准确通道模型。然后,我们提出了一种新的超声传输和多路访问技术,我们称之为超声宽带(UsWB)。 UsWB基于这样的思想,即按照时跳模式发送分布在非常短的脉冲上的信息位。短脉冲持续时间导致有限的反射和散射效应,而低占空比降低了热效应和机械效应的影响,这可能对人体健康有害。然后,我们开发一种具有分布式控制的多址技术,以基于最小和局部信息交换以及仅在接收器处的测量,通过相互干扰的设备实现高效的同时访问。最后,我们通过多尺度仿真器演示了UsWB的性能,该仿真器在声波级,物理(位)级和网络(分组)级对拟议的通信系统进行建模。我们还通过将仿真结果与通过软件定义的测试平台获得的实验结果进行比较来验证仿真结果。

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