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Machine learning based performance development for diagnosis of breast cancer

机译:基于机器学习的性能开发以诊断乳腺癌

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摘要

Breast cancer is prevalent among women and develops from breast tissue. Early diagnosis and accurate treatment is vital to increase the rate of survival. Identification of genetic factors with microarray technology can make significant contributions to diagnosis and treatment process. In this study, several machine learning algorithms are used for Diagnosis of Breast Cancer and their classification performances are compared with each other. In addition, the active genes in breast cancer are identified by attribute selection methods and the conducted study show success rate 90,72 % with 139 feature.
机译:乳腺癌在女性中很普遍,并从乳房组织发展而来。早期诊断和准确治疗对于提高生存率至关重要。利用微阵列技术鉴定遗传因素可以对诊断和治疗过程做出重大贡献。在这项研究中,几种机器学习算法被用于诊断乳腺癌,并且将它们的分类性能进行了比较。此外,通过属性选择方法鉴定了乳腺癌中的活性基因,所进行的研究显示成功率为90.72%,具有139个特征。

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