An Investigation into Mini-Batch Rule Learning

Beck, Florian, Fürnkranz, Johannes

arXiv.org Artificial Intelligence 

We investigate whether it is possible to learn rule sets efficiently in a network structure with a single hidden layer using iterative refinements over mini-batches of examples. A first rudimentary version shows an acceptable performance on all but one dataset, even though it does not yet reach the performance levels of Ripper.

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