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A Low Power System with Adaptive Data Compression for Wireless Monitoring of Physiological Signals and its Application to Wireless Electroencephalography

机译:一种低功耗系统,具有自适应数据压缩,用于对生理信号的无线监控及其在无线脑电图中的应用

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Remote wireless monitoring of physiological signals has emerged as a key enabler for biotelemetry and can significantly improve the delivery of healthcare. Improving the energy-efficiency and battery-lifetime of the monitoring units without sacrificing the acquired signal quality is a key challenge in large-scale deployment of bio-electronic systems for remote wireless monitoring. In this paper, we present a design methodology for low power wireless monitoring of Electroencephalography (EEG) data. The proposed design performs a real-time accuracy energy trade-off by controlling the volume of transmitted data based on the information content in the EEG signal. We consider the effect of different system parameters in order to design an optimal system. Our analysis shows that the proposed system design approach can provide significant savings in transmitter power with minimal impact on the monitored EEG signal accuracy. We analyze the impact of noise of the wireless channel and show that an adaptive compression system has better performance for BER < 10~(-4).
机译:远程无线监测生理信号作为生物再次仪器的关键推动因素,可以显着改善医疗保健的交付。在不牺牲所获得的信号质量的情况下,提高监控单元的能量效率和电池寿命是用于远程无线监控的大规模部署的主要挑战。在本文中,我们提出了一种用于脑电图(EEG)数据的低功耗无线监控的设计方法。所提出的设计通过基于EEG信号中的信息内容控制传输数据的体积来执行实时精度能量折衷。我们考虑不同系统参数的影响,以设计最佳系统。我们的分析表明,所提出的系统设计方法可以在发射机功率下提供显着节省,对监测的EEG信号精度的影响最小。我们分析了无线信道噪声的影响,并表明自适应压缩系统具有更好的BER <10〜(-4)性能。

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