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Boris Sharchilev

1 accepted papers

2018

Finding Influential Training Samples for Gradient Boosted Decision Trees

ICML 2018oral

We address the problem of finding influential training samples for a particular case of tree ensemble-based models, e.g., Random Forest (RF) or Gradient Boosted Decision Trees (GBDT). A natural way of formalizing this problem is studying how the model’s predictions change upon leave-one-out retraini…