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Automated characterization of diabetic foot using nonlinear features extracted from thermograms

机译:使用热法中提取的非线性特征自动表征糖尿病脚

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摘要

Diabetic foot is a major complication of diabetes mellitus (DM). The blood circulation to the foot decreases due to DM and hence, the temperature reduces in the plantar foot. Thermography is a noninvasive imaging method employed to view the thermal patterns using infrared (IR) camera. It allows qualitative and visual documentation of temperature fluctuation in vascular tissues. But it is difficult to diagnose these temperature changes manually. Thus, computer assisted diagnosis (CAD) system may help to accurately detect diabetic foot to prevent traumatic outcomes such as ulcerations and lower extremity amputation. In this study, plantar foot thermograms of 33 healthy persons and 33 individuals with type 2 diabetes are taken. These foot images are decomposed using discrete wavelet transform (DWT) and higher order spectra (HOS) techniques. Various texture and entropy features are extracted from the decomposed images. These combined (DWT + HOS) features are ranked using t-values and classified using support vector machine (SVM) classifier. Our proposed methodology achieved maximum accuracy of 89.39%, sensitivity of 81.81% and specificity of 96.97% using only five features. The performance of the proposed thermography-based CAD system can help the clinicians to take second opinion on their diagnosis of diabetic foot. (C) 2018 Elsevier B.V. All rights reserved.
机译:糖尿病脚是糖尿病(DM)的主要并发症。由于DM,脚的血液循环降低,因此,温度在跖脚中减少。热成像是一种非侵入性成像方法,用于使用红外线(IR)相机查看热图案。它允许血管组织中温度波动的定性和视觉记录。但是难以手动诊断这些温度变化。因此,计算机辅助诊断(CAD)系统可以有助于准确地检测糖尿病脚,以防止创伤性结果,例如溃疡和下肢截肢。在本研究中,采用33名健康人和33名糖尿病患者的33名患有33名糖尿病的Portharar脚热量点。这些脚图像使用离散小波变换(DWT)和高阶谱(HOS)技术进行分解。从分解图像中提取各种纹理和熵特征。这些组合(DWT + HOS)特征在使用T值并使用支持向量机(SVM)分类器进行排序。我们所提出的方法达到最高精度为89.39%,敏感性为81.81%,特异性为56.97%,只使用五个特征。拟议的热成像的CAD系统的性能可以帮助临床医生对其对糖尿病脚的诊断进行第二种意见。 (c)2018 Elsevier B.v.保留所有权利。

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