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Energy Efficiency and Reliability in Wireless Biomedical Implant Systems

机译:无线生物医学植入系统的能效和可靠性

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The use of wireless implant technology requires correct delivery of the vital physiological signs of the patient along with the energy management in power-constrained devices. Toward these goals, we present an augmentation protocol for the physical layer of the medical implant communications service (MICS) with focus on the energy efficiency of deployed devices over the MICS frequency band. The present protocol uses the rateless code with the frequency-shift keying (FSK) modulation scheme to overcome the reliability and power cost concerns in tiny implantable sensors due to the considerable attenuation of propagated signals across the human body. In addition, the protocol allows a fast start-up time for the transceiver circuitry. The main advantage of using rateless codes is to provide an inherent adaptive duty cycling for power management, due to the flexibility of the rateless code rate. Analytical results demonstrate that an 80% energy saving is achievable with the proposed protocol when compared to the IEEE 802.15.4 physical layer standard with the same structure used for wireless sensor networks. Numerical results show that the optimized rateless coded FSK is more energy efficient than that of the uncoded FSK scheme for deep tissue (e.g., digestive endoscopy) applications, where the optimization is performed over modulation and coding parameters.
机译:无线植入技术的使用要求正确传送患者的重要生理征象以及功率受限设备中的能量管理。为了实现这些目标,我们提出了一种针对医疗植入物通信服务(MICS)物理层的增强协议,重点是在MICS频带上部署的设备的能效。本协议将无速率码与频移键控(FSK)调制方案一起使用,以克服由于微小的可植入传感器在人体上传播的信号造成的相当大的衰减而导致的可靠性和功耗问题。另外,该协议允许收发器电路的快速启动时间。由于无速率编码率的灵活性,使用无速率编码的主要优点是为电源管理提供了固有的自适应占空比。分析结果表明,与具有用于无线传感器网络的相同结构的IEEE 802.15.4物理层标准相比,使用建议的协议可实现80%的节能。数值结果表明,对于深层组织(例如,消化内窥镜)应用而言,优化的无速率编码FSK比未编码FSK方案具有更高的能源效率,在深层组织中,该优化是在调制和编码参数上进行的。

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