Publication | Open Access
Monotone Decision Trees and Noisy Data
18
Citations
2
References
2002
Year
Data ClassificationClassification MethodMonotone Data SetsMonotonicity ConstraintsMachine LearningData ScienceData MiningUncertainty QuantificationPattern RecognitionMonotone ClassificationEngineeringKnowledge DiscoveryDecision TreeNoisy DataDecision Tree LearningComputer ScienceMonotone Decision Trees
textabstractThe decision tree algorithm for monotone classification presented in [4, 10] requires strictly monotone data sets. This paper addresses the problem of noise due to violation of the monotonicity constraints and proposes a modification of the algorithm to handle noisy data. It also presents methods for controlling the size of the resulting trees while keeping the monotonicity property whether the data set is monotone or not.
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