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Experimental Evaluation of Impulsive Ultrasonic Intra-Body Communications for Implantable Biomedical Devices

机译:植入式生物医学装置的脉冲超声体内通信的实验评估

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Biomedical systems of miniaturized implantable sensors and actuators interconnected in an intra-body area network could enable revolutionary clinical applications. Given the well-understood limitations of radio frequency (RF) propagation in the human body, in our previous work we investigated the use of ultrasonic waves as an alternative physical carrier of information, and proposed Ultrasonic WideBand (UsWB), an ultrasonic multipath-resilient integrated physical and medium access control (MAC) layer protocol. In this paper, we discuss the design and implementation of a software-defined testbed architecture for ultrasonic intra-body area networks, and propose the first experimental demonstration of the feasibility of ultrasonic communications in tissue mimicking materials. We first discuss in detail our FPGA-based prototype implementation of UsWB. We then demonstrate how the prototype can flexibly trade performance off for power consumption, and achieve, for bit error rates (BER) no higher than 10−6 , either (i) high-data rate transmissions up to 700kbit/s at a transmit power of −14dBm ( ≈40μW ), or (ii) low-data rate and lower-power transmissions down to −21dBm ( ≈8μW ) at 70kbit/s . We demonstrate that the UsWB MAC protocol allows multiple transmitter-receiver pairs to coexist and dynamically adapt the transmission rate according to channel and interference conditions to maximize throughput while satisfying predefined reliability constraints. We also show how UsWB can be used to enable a video monitoring medical application for implantable devices. Finally, we propose (and validate through experiments) a statistical model of small-scale fading for the ultrasonic intra-body channel.
机译:在体内局域网中互连的微型植入式传感器和致动器的生物医学系统可以实现革命性的临床应用。考虑到人们对射频(RF)传播的充分理解的局限性,在我们以前的工作中,我们研究了使用超声波作为替代性的物理信息载体,并提出了超声波宽带(UsWB),一种具有弹性的多径超声波集成的物理和媒体访问控制(MAC)层协议。在本文中,我们讨论了用于超声体内区域网的软件定义的测试平台架构的设计和实现,并提出了在组织模拟材料中进行超声通信的可行性的首次实验演示。我们首先详细讨论我们基于FPGA的UsWB原型实现。然后,我们演示该原型如何灵活地权衡性能以降低功耗,并实现不超过10-6的误码率(BER),或者(i)发射功率高达700kbit / s的高数据速率传输为-14dBm(≈40μW)或(ii)在70kbit / s时低数据速率和低功率传输,低至-21dBm(≈8μW)。我们证明,UsWB MAC协议允许多个收发器对共存并根据信道和干扰条件动态调整传输速率,以在满足预定义的可靠性约束的同时最大化吞吐量。我们还将展示如何使用UsWB来为可植入设备启用视频监控医疗应用。最后,我们提出(并通过实验验证)超声体内通道的小规模衰落统计模型。

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