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Diagnosis of Type II Diabetes based on Non-glucose Regions of ~1H NMR Spectra of Urine A metabonomic approach

机译:基于尿液〜1H NMR谱的非葡萄糖区域的II型糖尿病的代谢组学方法

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摘要

A NMR dataset with non-buffered urine samples consisting of 73 controls and 94 type II diabetes was subject to an in-house statistical classifier. A model was developed based on two glucose-free regions of the spectrum and those maximally discriminatory subregions selected most often by the algorithm were noted. The final classifier achieved 83.0% sensitivity and 83.6% specificity, with 83.2% overall accuracy. There were five spectral subregions selected by the algorithm as most relevant for discrimination. The protocol works well with non-buffered samples and has the potential for an automated clinical diagnosis of diabetes.
机译:NMR数据集包含73个对照和94个II型糖尿病的非缓冲尿液样本,经过内部统计分类。基于光谱的两个无葡萄糖区域开发了一个模型,并指出了该算法最常选择的那些最大区分性子区域。最终的分类器实现了83.0%的灵敏度和83.6%的特异性,整体准确度为83.2%。该算法选择了五个与识别最相关的光谱子区域。该协议适用于非缓冲样品,并具有自动进行糖尿病临床诊断的潜力。

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