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Pre Hoc and Co Hoc Explainability: Frameworks for Integrating Interpretability into Machine Learning Training for Enhanced Transparency and Performance

Post hoc explanations for black-box machine learning models have been criticized for potentially inaccurate surrogate models and computational burden at prediction time. We propose pre hoc and co hoc explainability frameworks that integrate interpretability directly into the training process through...

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Bibliografische gegevens
Hoofdauteurs: Cagla Acun, Olfa Nasraoui
Formaat: Artigo
Taal:Inglês
Gepubliceerd in: MDPI AG 2025-07-01
Reeks:Applied Sciences
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Online toegang:https://www.mdpi.com/2076-3417/15/13/7544
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