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Context predictor based sparse sensing technique and smart transmission architecture for IoT enabled remote health monitoring applications

机译:基于上下文预测器的稀疏传感技术和智能传输架构,可支持物联网的远程健康监控应用

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In hyperconnectivity scenario, managing the amount of data acquired from sensors in the Body Area Networks (BANs) is one of the major issues. In this paper we propose an on-chip context predictor based sparse sensing technology with smart transmission architecture which makes use of confidence interval calculation from the features that present in the data, thereby achieving statistical guarantee. The proposed architecture uses intelligent sparse sensing, which eradicates the collection of redundant data, thereby reducing the amount of data generated. For the performance analysis, we considered ECG data acquisition and transmission system. The proposed architecture when applied on the data collected from 10 patients reduces the duty cycle of the sensing unit to 27.99%, by achieving an energy saving of 72% and the mean deviation of sampled data from the original data is 2%.
机译:在超连接情况下,管理从人体局域网(BAN)中的传感器获取的数据量是主要问题之一。在本文中,我们提出了一种具有智能传输体系结构的基于片上上下文预测器的稀疏传感技术,该技术利用数据中存在的特征进行置信区间计算,从而获得统计上的保证。所提出的体系结构使用了智能的稀疏感测技术,从而消除了冗余数据的收集,从而减少了生成的数据量。对于性能分析,我们考虑了ECG数据采集和传输系统。所建议的体系结构应用于从10位患者收集的数据时,通过实现72%的节能,并且将采样数据与原始数据的平均偏差为2%,将传感单元的占空比降低到27.99%。

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