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An Intelligent Approach to Segmentation and Classification of Common Skin Diseases in Sri Lanka

机译:斯里兰卡常见皮肤疾病的智能分类方法

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Skin diseases prevail worldwide, and the quality of life and overall health of patients are often hindered as a result. Early detection and treatment are key to a quick recovery. An automated system to identify skin diseases can act as a tool to assist doctors and healthcare workers. This paper presents an intelligent system to segment and classify three common skin diseases in Sri Lanka - tinea versicolor, atopic dermatitis and psoriasis - using image processing, genetic algorithm and machine learning. YUV -based color segmentation was applied to extract the affected region, then the texture and color features were extracted for classification. Genetic algorithm was utilized to obtain the optimized feature subset. An SVM based classifier was then trained and succeeded in classifying the three skin diseases with an overall accuracy of 86.7%.
机译:皮肤病在世界范围内普遍存在,结果常常阻碍患者的生活质量和整体健康。早期发现和治疗是快速康复的关键。识别皮肤疾病的自动化系统可以充当协助医生和医护人员的工具。本文提出了一种智能系统,可使用图像处理,遗传算法和机器学习对斯里兰卡的三种常见皮肤病(普通癣,杂色性皮炎和牛皮癣)进行分类和分类。应用基于YUV的颜色分割来提取受影响的区域,然后提取纹理和颜色特征以进行分类。利用遗传算法获得优化的特征子集。然后训练了一个基于SVM的分类器,并成功地对这三种皮肤病进行了分类,总体准确率为86.7%。

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