software . 2018

Datascienceinc/Skater: Enable Interpretability Via Rule Extraction(Brl)

Pramit Choudhary; Aaron Kramer; team;
Open Source
  • Published: 15 Mar 2018
  • Publisher: Zenodo
<ol> <li> <p>Skater till now has been an interpretation engine to enable post-hoc model evaluation and interpretation. With this PR Skater starts its journey to support interpretable models. Rule List algorithms are highly popular in the space of Interpretable Models because the trained models are represented as simple decision lists. In the latest release, we enable support for Bayesian Rule Lists(BRL). The probabilistic classifier( estimating P(Y=1|X) for each X ) optimizes the posterior of a Bayesian hierarchical model over the pre-mined rules.</p> <p>Usage Example:</p> <pre><code> from skater.core.global_interpretation.interpretable_models.brlc import BRLC i...
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Software . 2018
Provider: Datacite
Software . 2018
Provider: Zenodo
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