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consider a more sklearn like, pipeline approach #1207

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@fgregg
  1. break out all the active learning bits into a separate class or multiple separate classes

  2. train a blocking model, using the familiar fit_transform syntax. this is a separate class that emits a stream of pairs. (is this something that could really fit into the sklearn pattern)

  3. train a classification model using fit_transform., this takes in a stream of pairs and emits a stream of classification decisions

actually, this all would work quite well.

https://scikit-learn.org/stable/modules/generated/sklearn.pipeline.Pipeline.html

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