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Automatic classification of thermal patterns in diabetic foot based on morphological pattern spectrum

机译:基于形态模式谱的糖尿病足热模式自动分类

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摘要

This paper presents a novel approach to characterize and identify patterns of temperature in thermographic images of the human foot plant in support of early diagnosis and follow-up of diabetic patients. Composed feature vectors based on 3D morphological pattern spectrum (pecstrum) and relative position, allow the system to quantitatively characterize and discriminate non-diabetic (control) and diabetic (DM) groups. Non-linear classification using neural networks is used for that purpose. A classification rate of 9433% in average was obtained with the composed feature extraction process proposed in this paper. Performance evaluation and obtained results are presented. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文提出了一种新颖的方法来表征和识别人足植物热成像图像中的温度模式,以支持糖尿病患者的早期诊断和随访。基于3D形态模式谱(子宫)和相对位置的组合特征向量使系统能够定量表征和区分非糖尿病(对照组)和糖尿病(DM)组。为此,使用了基于神经网络的非线性分类。利用本文提出的组合特征提取方法,平均分类率为9433%。介绍了性能评估和获得的结果。 (C)2015 Elsevier B.V.保留所有权利。

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