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Thomas Trappenberg

9 papers hereh-index 7648 citations21 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • last author8

Across the 8 of 9 papers where every author was matched, so the position is known.

fields
  • cs.LG4
  • cs.CV2
  • eess.IV1
  • q-bio.QM1
  • stat.ML1

identity via Semantic Scholar / OpenAlex

works on
bayesian methods 1deep learning 1ensembles 1out-of-distribution detection 1uncertainty quantification 1

From the 1 of 9 linked papers with an AI index.

collaborators
Showing cs.LGShow all

4 papers · 1 filter

cs.LG2026

Covariance Last-Layer Ensembles: Function-Space Diversity for Efficient Uncertainty Quantification

H. Martin Gillis, Isaac Xu, Gabriel Spadon +1

A Last-Layer Ensemble (LLE), K linear units on one shared frozen feature map, is an efficient single-pass approach to the disagreement-based epistemic uncertainty for out-of-dist…

cs.LG2026

Improving Detection of Rare Nodes in Hierarchical Multi-Label Learning

Isaac Xu, Martin Gillis, Ayushi Sharma +3

In hierarchical multi-label classification, a persistent challenge is enabling model predictions to reach deeper levels of the hierarchy for more detailed or fine-grained classific…

cs.LG2026

Variance-Gated Ensembles: An Epistemic-Aware Framework for Uncertainty Estimation

H. Martin Gillis, Isaac Xu, Thomas Trappenberg

Machine learning applications require fast and reliable per-sample uncertainty estimation. A common approach is to use predictive distributions from Bayesian or approximation metho…

cs.LG2026

Uncertainty Estimation using Variance-Gated Distributions

H. Martin Gillis, Isaac Xu, Thomas Trappenberg

Evaluation of per-sample uncertainty quantification from neural networks is essential for decision-making involving high-risk applications. A common approach is to use the predicti…

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