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Support Vector Machine-a Large Margin Classifier to Diagnose Skin Illnesses

机译:支持向量机 - 一个诊断皮肤病的大型边缘分类器

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Support Vector Machine (SVM) have been very popular as a large margin classifier due its robust mathematical theory. It has many practical applications in a number of fields such as in bioinformatics, in medical science for diagnosis of diseases, in various engineering applications for prediction of model, in finance for forecasting etc. It is widely used in medical science because of its powerful learning ability in classification. It can classify highly nonlinear data using kernel function. This paper proposes and analyses diagnostic model to classify the most common skin illnesses and also provide a useful insight into the SVM algorithm. In rural areas where people are generally treated by paramedical staff, skin patients are not subject to proper diagnosis resulting in mistreatment. We think SVM is a good tool for proper diagnosis. This paper uses various kernels for classification and achieving the best accuracy of 95.39 % .
机译:支持向量机(SVM)由于其稳健的数学理论而被作为大型保证金分类器非常受欢迎。它在许多领域具有许多实际应用,例如生物信息学,在医学中,用于诊断疾病的诊断,在各种工程应用中,用于预测的模型,在预测等中的金融等中,它是由于其强大的学习而广泛应用于医学科学分类能力。它可以使用内核函数对高度非线性数据进行分类。本文提出并分析了诊断模型来分类最常见的皮肤病,并对SVM算法提供有用的见解。在农村地区,人们通常由护理人员的工作人员治疗,皮肤患者不受适当的诊断,导致虐待。我们认为SVM是适当诊断的好工具。本文采用各种核进行分类,实现95.39%的最佳准确性。

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