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https://issues.apache.org/jira/browse/LUCENE-4345?page=com.atlassian.jira.plugin.system.issuetabpanels:comment-tabpanel&focusedCommentId=13447429#comment-13447429
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Lance Norskog commented on LUCENE-4345:
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bq. would make training slower but it could be useful to improve accuracy
If you use index data which is already analyzed with the same analyzer as your
test (unseen) documents, you can use a lot more documents as input. More is
better. As the training data increases, signal drives out noise. Once you add
the ability to store & load models, training speed becomes less important.
Look at the Mahout project for ideas about text classifiers. The
ConfusionMatrix class and the html page it prints are really handy for
summarizing and probing the classifier's performance.
> Create a Classification module
> ------------------------------
>
> Key: LUCENE-4345
> URL: https://issues.apache.org/jira/browse/LUCENE-4345
> Project: Lucene - Core
> Issue Type: New Feature
> Reporter: Tommaso Teofili
> Assignee: Tommaso Teofili
> Priority: Minor
> Attachments: LUCENE-4345_2.patch, LUCENE-4345.patch,
> SOLR-3700_2.patch, SOLR-3700.patch
>
>
> Lucene/Solr can host huge sets of documents containing lots of information in
> fields so that these can be used as training examples (w/ features) in order
> to very quickly create classifiers algorithms to use on new documents and /
> or to provide an additional service.
> So the idea is to create a contrib module (called 'classification') to host a
> ClassificationComponent that will use already seen data (the indexed
> documents / fields) to classify new documents / text fragments.
> The first version will contain a (simplistic) Lucene based Naive Bayes
> classifier but more implementations should be added in the future.
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