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Top-down induction of decision trees classifiers - a survey

机译:自上而下的决策树分类器归纳-调查

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摘要

Decision trees are considered to be one of the most popular approaches for representing classifiers. Researchers from various disciplines such as statistics, machine learning, pattern recognition, and data mining considered the issue of growing a decision tree from available data. This paper presents an updated survey of current methods for constructing decision tree classifiers in a top-down manner. The paper suggests a unified algorithmic framework for presenting these algorithms and describes the various splitting criteria and pruning methodologies.
机译:决策树被认为是代表分类器的最流行方法之一。来自统计,机器学习,模式识别和数据挖掘等各个学科的研究人员考虑了从可用数据中增长决策树的问题。本文以自顶向下的方式介绍了当前用于构建决策树分类器的方法的最新调查。本文提出了一个统一的算法框架来介绍这些算法,并描述了各种分割标准和修剪方法。

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