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Blood Glucose Level Monitoring Using an FMCW Millimeter-Wave Radar Sensor

机译:使用FMCW毫米波雷达传感器进行血糖水平监测

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In this article, a novel sensing approach is presented for glucose level monitoring where a robust low-power millimeter(mm)-wave radar system is used to differentiate between blood samples of disparate glucose concentrations in the range 0.5 to 3.5 mg/mL. The proposed radar sensing mechanism shows greater capabilities for remote detection of blood glucose inside test tubes through detecting minute changes in their dielectric properties. In particular, the reflected mm-waves that represent unique signatures for the internal synthesis and composition of the tested blood samples, are collected from the multi-channels of the radar and analyzed using signal processing techniques to identify different glucose concentrations and correlate them to the reflected mm-wave readings. The mm-wave spectrum is chosen for glucose sensing in this study after a set of preliminary experiments that investigated the dielectric permittivity behavior of glucose-loaded solutions across different frequency bands. In this regard, a newly-developed commercial coaxial probe kit (DAK-TL) is used to characterize the electromagnetic properties of glucose-loaded samples in a broad range of frequencies from 300 MHz to 67 GHz using two different 50 Omega open-coaxial probes. This would help to determine the portion of the frequency spectrum that is more sensitive to slight variations in glucose concentrations as indicated by the amount of change in the dielectric constant and loss tangent parameters due to the different concentrations under test. The mm-wave frequency range 50 to 67 GHz has shown to be promising for acquiring both high sensitivity and sufficient penetration depth for the most interaction between the glucose molecules and electromagnetic waves. The processed results have indicated the reliability of using mm-wave radars in identifying changes in blood glucose levels while monitoring trends among those variations. Particularly, blood samples of higher glucose concentrations are correlated with reflected mm-wave signals of greater energy. The proposed system could likely be adapted in the future as a portable non-invasive continuous blood glucose level monitoring for daily use by diabetics.
机译:在本文中,提出了一种新的传感方法,用于葡萄糖水平监测,其中鲁棒低功耗毫米(mm) - 波雷达系统用于区分0.5至3.5mg / ml的不同葡萄糖浓度的血液样品。所提出的雷达传感机构显示出通过检测其介电性质的微小变化来远程检测试管内血糖的更大能力。特别地,从雷达的多通道中收集代表测试血样的内部合成和组合物的独特签名的反射MM波,并使用信号处理技术分析以识别不同的葡萄糖浓度并将它们相关联反射MM波读数。在该研究中选择MM波谱进行葡萄糖感测,经过一组初步实验,该研究在不同频带上研究了葡萄糖负载溶液的介电介电常数行为。在这方面,新开发的商业同轴探针试剂盒(DAK-TL)用于使用两种不同50欧米加开放式同轴探针在300 MHz至67GHz的广泛频率中表征葡萄糖加载样品的电磁特性。这将有助于确定对葡萄糖浓度的轻微变化更敏感的频谱部分,如介电常数和由于被测浓度的不同浓度导致的介电常数和切线参数的变化量更敏感。 MM波频率范围50至67GHz已显示有希望在葡萄糖分子和电磁波之间最相互作用获得高灵敏度和足够的穿透深度。处理后的结果表明了使用MM波雷达在识别血糖水平的变化时使用MM波雷达的可靠性,同时监测这些变化之间的趋势。特别地,较高葡萄糖浓度的血液样本与更大能量的反射MM波信号相关。拟议的系统可能会在将来调整为便携式非侵入性连续血糖水平监测,用于糖尿病患者的日常使用。

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