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Performance Comparison of Machine Learning-Based Classification of Skin Diseases from Skin Lesion Images

机译:皮肤病患者皮肤疾病的基于机器学习分类的性能比较

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Skin is one of the main parts of the human body. At the same time, skin will be easily infected and damaged by various kinds of skin diseases. Skin disease is a major health hazard across the globe. Nowadays, many people are suffering from skin diseases. It is tedious and time consuming for doctors to manually diagnose them. Recently, machine learning techniques have been successful in the detection and recognition of different types of objects in the images which have been applied to recognize various types of diseases from the medical images. Various machine learning techniques have been used to recognize and classify skin diseases from the images. Here, three machine learning techniques support vector machine (SVM), VGGNet and Inception-ResNet-v2 have been implemented to classify seven types of skin diseases from skin lesion images. Performance of these models has been evaluated and compared by using precision and recall values. Inception-ResNet-v2 has been found to be superior based on the classification performance among these three models.
机译:皮肤是人体的主要部分之一。同时,皮肤将容易受到各种皮肤病的感染和损坏。皮肤病是全球的主要健康危害。如今,许多人患有皮肤病。医生手动诊断它们是繁琐且耗时的令人疑惑。最近,机器学习技术已经成功地检测和识别已经应用于从医学图像识别各种类型的疾病的图像中的不同类型的物体。已经使用各种机器学习技术来识别和分类来自图像的皮肤病。这里,已经实施了三种机器学习技术支持向量机(SVM),VGGNET和Inception-Resnet-V2以对来自皮肤病变图像进行分类的七种类型的皮肤疾病。通过使用精度和召回值来评估这些模型的性能。已经发现Inception-Resnet-V2基于这三种模型中的分类性能来优越。

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