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An Extension of Apriori Algorithm to Discover Individualized Treatment Optimization of Breast Cancer

机译:Apriori算法的扩展,发现乳腺癌的个体化治疗优化

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Normally there is the very huge dataset in the application of medicine and bioinformatics.Traditional association algorithm produces too many rules in this kind of application,which are difficult to be identified and compared.In this work we attempt to propose an extension of Apriori algorithm to explore individualized treatment optimization of breast cancer.As the result of our method,the comparative association rules are produced.Thus,association rules algorithm become more practical and useful,especially in the field of medicine and bioinformatics.
机译:在医学和生物信息学的应用中通常会有非常庞大的数据集。传统的关联算法在这种应用中产生了太多规则,难以识别和比较。在这项工作中,我们尝试提出将Apriori算法扩展到我们的方法的结果是,产生了比较的关联规则。因此,关联规则算法变得更加实用和有用,特别是在医学和生物信息学领域。

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