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Detecting diabetes mellitus and nonproliferative diabetic retinopathy using tongue color, texture, and geometry features

机译:使用舌头的颜色,质地和几何特征来检测糖尿病和非增殖性糖尿病性视网膜病变

摘要

Diabetes mellitus (DM) and its complications leading to diabetic retinopathy (DR) are soon to become one of the 21st century's major health problems. This represents a huge financial burden to healthcare officials and governments. To combat this approaching epidemic, this paper proposes a noninvasive method to detect DM and nonproliferative diabetic retinopathy (NPDR), the initial stage of DR based on three groups of features extracted from tongue images. They include color, texture, and geometry. A noninvasive capture device with image correction first captures the tongue images. A tongue color gamut is established with 12 colors representing the tongue color features. The texture values of eight blocks strategically located on the tongue surface, with the additional mean of all eight blocks are used to characterize the nine tongue texture features. Finally, 13 features extracted from tongue images based on measurements, distances, areas, and their ratios represent the geometry features. Applying a combination of the 34 features, the proposed method can separate Healthy/DM tongues as well as NPDR/DM-sans NPDR (DM samples without NPDR) tongues using features from each of the three groups with average accuracies of 80.52% and 80.33%, respectively. This is on a database consisting of 130 Healthy and 296 DM samples, where 29 of those in DM are NPDR.
机译:糖尿病(DM)及其导致糖尿病性视网膜病变(DR)的并发症很快成为21世纪的主要健康问题之一。这给卫生保健官员和政府带来了巨大的财务负担。为了应对这种即将到来的流行病,本文提出了一种非侵入性方法来检测DM和非增殖性糖尿病性视网膜病变(NPDR),DR是基于从舌头图像中提取的三组特征的DR的初始阶段。它们包括颜色,纹理和几何形状。具有图像校正的非侵入性捕获设备首先捕获舌头图像。建立具有12种代表舌色特征的颜色的舌色域。策略性地位于舌头表面上的八个块的纹理值以及所有八个块的附加均值用于表征九个舌头纹理特征。最后,基于度量,距离,面积及其比率从舌头图像中提取的13个特征代表了几何特征。应用这34种特征的组合,所提出的方法可以使用三组中的每组特征分别分离Healthy / DM舌头和NPDR / DM-sans NPDR(无NPDR的DM样本)舌头,平均准确度为80.52%和80.33% , 分别。该数据库包含130个健康样本和296个DM样本,其中DM中的29个样本为NPDR。

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