An unsupervised approach to feature discretization and selection
Many learning problems require handling high dimensional datasets with a relatively small number of instances. Learning algorithms are thus confronted with the curse of dimensionality, and need to address it in order to be effective. Examples of these types of data include the bag-of-words represent...
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Formato: | article |
Idioma: | eng |
Publicado em: |
2015
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Texto completo: | http://hdl.handle.net/10400.21/5074 |
País: | Portugal |
Oai: | oai:repositorio.ipl.pt:10400.21/5074 |