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Low-power EEG monitor based on compressed sensing with compressed domain noise rejection

机译:基于具有压缩域噪声抑制功能的压缩感测的低功率脑电监测器

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Wireless sensor nodes capable of acquiring and transmitting biosignals are increasingly important to address future needs in healthcare monitoring. One of the main issues in designing these systems is the unavoidable energy constraint due to the limited battery lifetime, which strictly limits the amount of data that may be transmitted. Compressed Sensing (CS) is an emerging technique for introducing low-power, real-time compression of the acquired signals before transmission. The recently developed rakeness approach is capable of further increasing CS performance. In this paper we apply the rakeness-CS technique to enhance compression capabilities for electroencephalographic (EEG) signals, and particularly for Evoked Potentials (EP), which are recordings of the neural activity evoked by the presentation of a stimulus. Simulation results demonstrate that EPs are correctly reconstructed using rakeness-CS with a compression factor of 16. Additionally, some interesting denoising capabilities are identified: the high-frequency noise components are rejected and the 60 Hz power line noise is decreased by more than 20dB with respect to the state-of-the-art filtering when rakeness-CS techniques are applied to the EEG data stream.
机译:能够获取和传输生物信号的无线传感器节点对于满足医疗保健监控的未来需求越来越重要。设计这些系统的主要问题之一是由于有限的电池寿命而不可避免的能源约束,这严格限制了可以传输的数据量。压缩传感(CS)是一种新兴技术,用于在传输之前对采集的信号进行低功耗,实时压缩。最近开发的耙度方法能够进一步提高CS性能。在本文中,我们应用rakeness-CS技术来增强脑电图(EEG)信号的压缩能力,尤其是诱发电位(EP)的压缩能力,诱发电位是记录刺激引起的神经活动的记录。仿真结果表明,使用度数为16的rakeness-CS可以正确地重构EP。此外,还发现了一些有趣的降噪功能:高频噪声分量被拒绝,并且60 Hz电力线噪声降低了20dB以上。关于将rakeness-CS技术应用于EEG数据流的最新技术过滤。

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