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Application of Inductive Bayesian Hierarchical Clustering Algorithm to Identify Brain Tumors

机译:诱导贝叶斯分层聚类算法在脑肿瘤中的应用

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The article presents the results of research concerning development of inductive algorithm for hierarchical Bayesian clustering of gene expression of patients with two types of brain tumors and healthy individuals. The study carried out comparative studies of the clustering quality of inductive and classical methods of Bayesian hierarchical clustering algorithm (BHC). It is proposed to apply the moving average and FFT filtering methods for data dimension reducing. The basic principles of creating an inductive model of objective clustering are formed, the results of clustering are shown at various levels of data dimension reducing, the advantages of objective clustering BHC in comparison with the canonical BHC algorithm are determined.
机译:本文介绍了关于患有两种脑肿瘤和健康个体的患者基因表达的分层贝叶斯聚类感应算法的研究结果。 该研究对贝叶斯分层聚类算法(BHC)感应和经典方法的聚类质量进行了比较研究。 建议应用用于数据维度的移动平均和FFT过滤方法。 形成创建目标群集的感应模型的基本原理,在各种水平的数据维度降低时显示聚类结果,确定了与规范BHC算法相比的目标聚类BHC的优点。

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