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Pigmentation Prevalence Analysis of Smoker's Tongue Using Hyperspectral Imaging

机译:高光谱成像技术分析吸烟者舌头色素沉着的发生率

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Visually, it is difficult to differentiate between smoker and non-smoker tongue even for an experienced doctor or dentist. One of the most objective ways to acknowledge the smoker tongue is by using tools such as a camera. The proposed system contains two parts, hardware, and software. The hardware consists of a workbench, slider, a halogen light source and hyperspectral camera with a spectral range between 400-1000 nm connected to a personal computer. The system complemented with image processing software built up especially to analyze the smoker tongue. The reflectance values of the tongue surface were extracted from respondent tongue image that previously corrected using white and dark hyperspectral image references. The principal component analysis (PCA) was used to compute and select the features subset which will be used as an input by the classifier. The support vector machine (SVM) classifier is used as image classification model since it performs excellently to choose the best hyperplane separator between two different classes. The evaluation of system result is checked using confusion matrix by making false positive rate (FPR), false negative rate (FNR), sensitivity and specificity as system reliability parameters. A Smoker detection system to identify smoker's melanosis is successfully classify the tongue of smokers and non-smokers with reasonable accuracy.
机译:在视觉上,即使有经验的医生或牙医也很难区分吸烟者和不吸烟者。识别吸烟者舌头的最客观方法之一是使用诸如照相机之类的工具。拟议的系统包含两部分,硬件和软件。硬件包括一个工作台,滑条,一个卤素灯光源和一个光谱范围为400-1000 nm的高光谱相机,并连接到个人计算机上。该系统辅以专门用于分析吸烟者舌头的图像处理软件。从先前使用白色和深色高光谱图像参考进行校正的响应舌图像中提取舌表面的反射率值。主成分分析(PCA)用于计算和选择要素子集,这些子集将用作分类器的输入。支持向量机(SVM)分类器用作图像分类模型,因为它在两个不同类别之间选择最佳的超平面分隔符方面表现出色。通过将误报率(FPR),误报率(FNR),灵敏度和特异性作为系统可靠性参数,使用混淆矩阵来检查系统结果的评估。识别吸烟者黑色素病的吸烟者检测系统已成功地以合理的准确性对吸烟者和非吸烟者的舌头进行了分类。

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