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A survey of decision tree classifier methodology

机译:决策树分类器方法研究

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摘要

Decision Tree Classifiers (DTC's) are used successfully in many diverse areas such as radar signal classification, character recognition, remote sensing, medical diagnosis, expert systems, and speech recognition. Perhaps, the most important feature of DTC's is their capability to break down a complex decision-making process into a collection of simpler decisions, thus providing a solution which is often easier to interpret. A survey of current methods is presented for DTC designs and the various existing issue. After considering potential advantages of DTC's over single stage classifiers, subjects of tree structure design, feature selection at each internal node, and decision and search strategies are discussed.
机译:决策树分类器(DTC)已成功用于许多不同的领域,例如雷达信号分类,字符识别,遥感,医学诊断,专家系统和语音识别。也许,DTC的最重要特征是其将复杂的决策过程分解为更简单的决策的集合的能力,从而提供了通常更易于解释的解决方案。本文介绍了DTC设计和各种现有问题的当前方法。在考虑了DTC优于单级分类器的潜在优势之后,讨论了树结构设计的主题,每个内部节点的特征选择以及决策和搜索策略。

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