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Investigation of Trees Algorithms for Improving Quality of Client's Data in Data Mining Tasks

机译:改善数据挖掘任务中的客户数据质量的树木算法研究

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Machine learning methods, which are tree-based algorithms, have found their application in the task of improving the quality of client data. Among such methods are distinguished: decision trees and decision forests, random trees, ensembles of trees and forests. Such methods are used both to save large amounts of data from redundant information, to restore missing values and to determine anomalous values. Subsequently, on the data transformed by such algorithms, it is possible to build highly accurate forecasts of changes in the target parameter, whether it is the size of profit or investment. Thus, the effectiveness of applying algorithms on trees in a new field for the introduction of machine learning is proved.
机译:机器学习方法是基于树的算法,已经找到了他们在提高客户端数据质量的任务中的应用。在这些方法中,区分:决策树和决定林,随机树,树木和森林的集合。这些方法都用于从冗余信息中保存大量数据,以恢复缺失值并确定异常值。随后,在由这种算法转换的数据上,可以在目标参数中构建高度准确的变化预测,无论是利润还是投资的大小。因此,证明,证明了在新领域在树上应用算法的有效性。

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