Publication | Open Access
Top-down induction of clustering trees
398
Citations
13
References
2000
Year
Artificial IntelligenceCluster ComputingClustering TreesEngineeringOptimization-based Data MiningData ScienceData MiningPattern RecognitionDecision Tree LearningDocument ClusteringInstance-based LearningTop-down InductionKnowledge DiscoveryComputer ScienceSymbolic Machine LearningInductive Logic ProgrammingGraph TheoryAutomated ReasoningFirst Order ClusteringBusinessDecision Trees
An approach to clustering is presented that adapts the basic top-down induction of decision trees method towards clustering. To this aim, it employs the principles of instance based learning. The resulting methodology is implemented in the TIC (Top down Induction of Clustering trees) system for first order clustering. The TIC system employs the first order logical decision tree representation of the inductive logic programming system Tilde. Various experiments with TIC are presented, in both propositional and relational domains.
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