用统计模式识别分析超重肥胖患者的面部颜色及其与健康和糖尿病的关系

Ting Shu, Bob Zhang
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引用次数: 2

摘要

医学界众所周知,超重/肥胖会损害健康,并增加患糖尿病的风险。然而,这目前是通过被认为是侵入性的生理/生化实验或通过人群的体重指数来研究的。本文提出了一种非侵入性的统计模式识别方法,利用面部块颜色特征分析超重/肥胖(140个样本)、健康(125个样本)和糖尿病(284个样本)三个类别之间的关系。通过专门设计的非侵入性色彩校正装置捕捉西医医师标记的面部图像。图像捕获后,从面部块中提取颜色特征。通过计算其平均欧几里得距离,将这三个类别分为两组进行比较,结果表明超重/肥胖和糖尿病比其他组合更接近。这支持了超重/肥胖与糖尿病存在高度相关的说法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facial color analysis of Overweight-Obesity and its relationship to Healthy and Diabetes Mellitus using statistical pattern recognition
It is well known in the medical community that being overweight/obese is damaging to one's health, and increases the risk of diabetes. However, this is currently investigated via physiological/biochemical experiments considered to be invasive, or through the body mass index of a population. In this paper we propose a non-invasive method with statistical pattern recognition to analyze the relationship between three classes: Overweight/Obesity (140 samples), Healthy (125 samples), and Diabetes Mellitus (284 samples), using facial block color features. Facial images labeled by medical doctors practicing western medicine were captured by a specifically designed non-invasive device adopting color correction. After image capture, color features were extracted from the facial blocks. When comparing the three classes in groups of two by calculating their mean Euclidean distance, the results indicate Overweight/Obesity and Diabetes Mellitus are closer than the other combinations. This supports the claim that being overweight/obese is highly correlated with the presence of diabetes.
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