Diagnosis of Malignant Melanoma of Skin Cancer Types

A. H. H. Alasadi, Baidaa M. Alsafy
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引用次数: 11

Abstract

Malignant melanoma is a kind of skin cancer that begins in melanocytes. It can influence on the skin only, or it may expand to the bones and organs. It is less common, but more serious and aggressive than other types of skin cancer. Malignant Melanoma can happen anywhere on the skin, but it is widespread in certain locations such as the legs in women, the back and chest in men, the face, the neck, mouth, eyes, and genitals. In this paper, a proposed algorithm is designed for diagnosing malignant melanoma types by using digital image processing techniques. The algorithm consists of four steps: preprocessing, separation, features extraction, and diagnosis. A neural network (NN) used to diagnosis malignant melanoma types. The total accuracy of the neural network was 100% for training and 93% for testing. The evaluation of the algorithm is done by using sensitivity, specificity, and accuracy. The sensitivity of NN in diagnosing malignant melanoma types was 95.6%, while the specificity was 92.2% and the accuracy was 93.9%. The experimental results are acceptable.
皮肤癌类型中恶性黑色素瘤的诊断
恶性黑色素瘤是一种始于黑色素细胞的皮肤癌。它可以只影响皮肤,也可以扩展到骨骼和器官。它不太常见,但比其他类型的皮肤癌更严重和更具侵略性。恶性黑色素瘤可以发生在皮肤上的任何地方,但在某些部位普遍存在,如女性的腿部,男性的背部和胸部,面部,颈部,口腔,眼睛和生殖器。本文提出了一种利用数字图像处理技术诊断恶性黑色素瘤类型的算法。该算法包括预处理、分离、特征提取和诊断四个步骤。用于诊断恶性黑色素瘤类型的神经网络(NN)。神经网络的训练总准确率为100%,测试总准确率为93%。通过灵敏度、特异性和准确性对算法进行评价。神经网络诊断恶性黑色素瘤类型的敏感性为95.6%,特异性为92.2%,准确率为93.9%。实验结果是可以接受的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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