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SARA
2005
Springer

The Cruncher: Automatic Concept Formation Using Minimum Description Length

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The Cruncher: Automatic Concept Formation Using Minimum Description Length
Abstract. We present The Cruncher, a simple representation framework and algorithm based on minimum description length for automatically forming an ontology of concepts from attribute-value data sets. Although unsupervised, when The Cruncher is applied to an animal data set, it produces a nearly zoologically accurate categorization. We demonstrate The Cruncher’s utility for finding useful macro-actions in Reinforcement Learning, and for learning models from uninterpreted sensor data. We discuss advantages The Cruncher has over concept lattices and hierarchical clustering.
Marc Pickett, Tim Oates
Added 28 Jun 2010
Updated 28 Jun 2010
Type Conference
Year 2005
Where SARA
Authors Marc Pickett, Tim Oates
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