Publication | Closed Access
Top-Down Induction of Decision Trees Classifiers—A Survey
775
Citations
70
References
2005
Year
EngineeringMachine LearningText MiningKnowledge Discovery In DatabasesData ScienceData MiningPattern RecognitionDecision TreeManagementDecision Tree LearningTop-down InductionPredictive AnalyticsKnowledge DiscoveryIntelligent ClassificationComputer ScienceData ClassificationClassificationClassifier SystemDecision Trees
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.
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