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Hybrid Progressive Algorithm to Recognize Type II Diabetic Based on Hair Mineral Element Contents

机译:基于头发矿物质元素含量的II型糖尿病混合渐进识别算法

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In this paper, a hybrid progressive algorithm to recognize type II diabetic based on hair mineral element levels is proposed. Hair samples of 244 cases (Table 1) are collected from 51 healthy persons (one case each person), 47 unchecked diabetics (one case each person) and 73 checked diabetics (two cases each person). 8 hair elements (Mg, Ca, Fe, Cu, Zn, Se, Cr and Mn) are measured. The hybrid progressive algorithm is used to form a scalar quantity (dynamic diagnosis index (DDI)) based hair element levels. The result show that hair may be a good symptom index to judge whether a person affected by diabetes mellitus if appropriate sampling and measuring procedure adopted and proper algorithm to retrieve information from multi-elements levels in hair. Because the non-invasive characteristics of hair analysis, this procedure and algorithm is very suitable at least to large population screening of early diabetes
机译:在本文中,提出了一种基于头发矿物质元素水平识别II型糖尿病的混合渐进算法。从51名健康人(每人1例),47例未经检查的糖尿病患者(每人1例)和73例经检查的糖尿病患者(每人2例)中收集了244例头发样本(表1)。测量了8种头发元素(Mg,Ca,Fe,Cu,Zn,Se,Cr和Mn)。混合渐进算法用于形成基于头发元素级别的标量(动态诊断指数(DDI))。结果表明,如果采用适当的采样和测量程序以及采用适当的算法从头发中的多种成分中检索信息,则头发可能是判断是否患有糖尿病的好症状指标。由于头发分析的非侵入性特征,因此该程序和算法至少非常适合于早期糖尿病的大量人群筛查

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