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首页> 外文期刊>Indian Journal of Science and Technology >Application of bio-inspired krill herd algorithm for breast cancer classification and diagnosis
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Application of bio-inspired krill herd algorithm for breast cancer classification and diagnosis

机译:生物启发性磷虾群算法在乳腺癌分类和诊断中的应用

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Our work presents a data mining approach, using Krill herd optimization algorithm to generate more comprehensive classification of breast cancer dataset. Hybrid krill herd algorithm (HKH) is proposed which is suitable for generation of optimized classification rules. HKH algorithm has a very flexible encoding where each member of population (krill herd) corresponds to a classification rule. Each krill herd consist of many krills corresponding to antecedents of classification rule. For breast cancer classification, Wisconsin diagnostic breast cancer data set created from fine needle aspiration biopsy of breast mass was used. Using this optimization algorithm a very comprehensive and simple classification rule is obtained for breast cancer classification represented in form of If-Then rule. The obtained rule can be used to further classify breast tissue specimens into malignant and benign classes, thus supporting the cancer diagnosis.
机译:我们的工作提出了一种数据挖掘方法,该方法使用Krill牧群优化算法来生成更全面的乳腺癌数据集分类。提出了适用于优化分类规则生成的混合磷虾群算法(HKH)。 HKH算法的编码非常灵活,每个种群(磷虾群)的每个成员对应一个分类规则。每个磷虾群都包含许多与分类规则的先例相对应的磷虾。对于乳腺癌分类,使用从乳腺肿块的细针穿刺活检创建的威斯康星州诊断性乳腺癌数据集。使用该优化算法,可以以If-Then规则的形式获得非常全面且简单的乳腺癌分类规则。所获得的规则可用于将乳房组织标本进一步分类为恶性和良性类别,从而支持癌症诊断。

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