Data mining methods supporting diagnosis of melanoma

J. Grzymala-Busse, Z. Hippe
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引用次数: 14

Abstract

Melanoma, a dangerous skin cancer, is usually diagnosed using the ABCD formula. The main objective of our research was to find a better formula resembling the original ABCD formula using four different discretization methods. All four corresponding modified ABCD formulas are significantly more accurate (with the level of significance 5%) than the original ABCD formula. Our additional objective was to calibrate the rule set induced from the original data set, describing melanoma, using the best discretization method, so that the sensitivity (the conditional probability for recognition of malignant and suspicious melanoma) was increased. This objective was accomplished using a technique of changing rule strengths.
支持黑色素瘤诊断的数据挖掘方法
黑色素瘤是一种危险的皮肤癌,通常使用ABCD公式进行诊断。我们研究的主要目的是使用四种不同的离散化方法找到与原始ABCD公式相似的更好的公式。4个相应修正的ABCD公式均显著高于原ABCD公式(显著性水平为5%)。我们的另一个目标是使用最佳离散化方法校准描述黑色素瘤的原始数据集诱导的规则集,从而提高灵敏度(识别恶性和可疑黑色素瘤的条件概率)。这个目标是通过改变规则强度的技术来实现的。
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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