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Smart Continuous Glucose Monitoring Sensors: On-Line Signal Processing Issues

机译:智能连续葡萄糖监测传感器:在线信号处理问题

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摘要

The availability of continuous glucose monitoring (CGM) sensors allows development of new strategies for the treatment of diabetes. In particular, from an on-line perspective, CGM sensors can become “smart” by providing them with algorithms able to generate alerts when glucose concentration is predicted to exceed the normal range thresholds. To do so, at least four important aspects have to be considered and dealt with on-line. First, the CGM data must be accurately calibrated. Then, CGM data need to be filtered in order to enhance their signal-to-noise ratio (SNR). Thirdly, predictions of future glucose concentration should be generated with suitable modeling methodologies. Finally, generation of alerts should be done by minimizing the risk of detecting false and missing true events. For these four challenges, several techniques, with various degrees of sophistication, have been proposed in the literature and are critically reviewed in this paper.
机译:连续葡萄糖监测(CGM)传感器的可用性允许开发治疗糖尿病的新策略。特别是,从在线角度来看,CGM传感器可以通过为它们提供算法,使其在预测葡萄糖浓度超过正常范围阈值时能够生成警报,从而变得“智能”。为此,必须至少考虑四个重要方面并在线进行处理。首先,必须精确校准CGM数据。然后,需要对CGM数据进行滤波,以增强其信噪比(SNR)。第三,对未来葡萄糖浓度的预测应通过适当的建模方法来产生。最后,应通过最大程度地降低检测到虚假和遗漏的真实事件的风险来完成警报的生成。针对这四个挑战,文献中已经提出了几种具有不同复杂程度的技术,并且在本文中对其进行了严格的审查。

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