Publication | Closed Access
DTs: Dynamic Trees
30
Citations
3
References
1998
Year
Artificial IntelligenceEngineeringMachine LearningStatistical Relational LearningImage AnalysisData ScienceDecision TreePattern RecognitionDecision Tree LearningTree AutomatonCombinatorial OptimizationTree LanguageMachine VisionGraphical ModelBayesian NetworkComputer ScienceImage ModelsComputer VisionDynamic Tree ModelDynamic TreesData Modeling
In this paper we introduce a new class of image models, which we call dynamic trees or DTs. A dynamic tree model specifies a prior over a large number of trees, each one of which is a tree-structured belief net (TSBN). Experiments show that DTs are capable of generating images that are less blocky, and the models have better translation invariance properties than a fixed, balanced TSBN. We also show that Simulated Annealing is effective at finding trees which have high posterior probability.
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