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https://issues.apache.org/jira/browse/SPARK-5272?page=com.atlassian.jira.plugin.system.issuetabpanels:all-tabpanel
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Hyukjin Kwon resolved SPARK-5272.
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    Resolution: Incomplete

> Refactor NaiveBayes to support discrete and continuous labels,features
> ----------------------------------------------------------------------
>
>                 Key: SPARK-5272
>                 URL: https://issues.apache.org/jira/browse/SPARK-5272
>             Project: Spark
>          Issue Type: Improvement
>          Components: MLlib
>    Affects Versions: 1.2.0
>            Reporter: Joseph K. Bradley
>            Priority: Major
>              Labels: bulk-closed, clustering
>
> This JIRA is to discuss refactoring NaiveBayes in order to support both 
> discrete and continuous labels and features.
> Currently, NaiveBayes supports only discrete labels and features.
> Proposal: Generalize it to support continuous values as well.
> Some items to discuss are:
> * How commonly are continuous labels/features used in practice?  (Is this 
> necessary?)
> * What should the API look like?
> ** E.g., should NB have multiple classes for each type of label/feature, or 
> should it take a general Factor type parameter?



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