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Algorithm for Constructing a Classifier Team Using a Modified PCA (Principal Component Analysis) in the Task of Diagnosis of Acute Lymphocytic Leukaemia Type B-CLL

机译:用于构建分类器团队的算法,使用修改的PCA(主成分分析)在急性淋巴细胞白血病型B-CLL诊断中的任务中

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Systems of data recognition and data classification are getting more and more developed. There appear newer algorithms that solve more difficult and complex decision problems. Very good results are obtained using sets of classifiers. The authors in their research focused on certain data characteristics. The characteristics concerns recognition of classes of objects whose features can be grouped. Clusters created in this manner can contribute to better recognition of certain decision classes. One such example is a diagnosis of forecast in the case of acute lymphocytic chronic leukaemia B-CLL type. In this document, the authors present a modified selection method of features of the PCA object. The modification concerns the rotation of objects in relation to decision classes. In addition to grouping similar features using Varimax rotation, a procedure for grouping patients in these PCA groups was developed. Within each PCA, two classifiers - strong and weak ones were built. In the research part, the developed method was compared to the one-stage recognition algorithms known from the literature. The obtained results have a significant contribution to medical diagnostics. They allow to develop a procedure for treatment of B-CLL lymphocytic leukaemia. Making an appropriate diagnosis allows to increase a patient's survival chance by implementing appropriate treatment.
机译:数据识别和数据分类系统越来越开发。出现更新的算法,解决了更加困难和复杂的决策问题。使用一组分类器获得非常好的结果。他们的研究中的作者集中于某些数据特征。特征涉及识别可以分组其特征的对象类。以这种方式创建的集群可以有助于更好地识别某些决策类。在急性淋巴细胞慢性白血病B-CLL型的情况下,一个这样的例子是对预测的诊断。在本文档中,作者呈现了PCA对象的修改选择方法。该修改涉及对决策类的对象的旋转。除了使用VARIMAX旋转分组类似的特征外,还开发了这些PCA组中患者的程序。在每个PCA内,构建了两个分类器 - 强大而弱势。在研究部分中,将开发方法与文献中已知的单级识别算法进行比较。所获得的结果对医疗诊断有重大贡献。它们允许制定一种治疗B-CLL淋巴细胞白血病的程序。制定适当的诊断允许通过实施适当的治疗来增加患者的生存机会。

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