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by westurner
579 days ago
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The relative performance in err/watts/time compared to deep learning for feature selection instead of principal component analysis and standard xgboost or tabular xt TODO for optimization given the indicating features. XAI: Explainable AI: https://en.wikipedia.org/wiki/Explainable_artificial_intelli... /? XAI , #XAI , Explain, EXPLAIN PLAN , error/energy/time |
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> TabPFN: https://github.com/automl/TabPFN .. https://x.com/FrankRHutter/status/1583410845307977733 [2022]
"TabPFN: A Transformer That Solves Small Tabular Classification Problems in a Second" (2022) https://arxiv.org/abs/2308.08945
> FWIU TabPFN is Bayesian-calibrated/trained with better performance than xgboost for non-categorical data