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researcher

E. Hullermeier

8 papers hereh-index 14578 citations40 works total

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

author position
  • middle author5
  • last author3

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

fields
  • cs.LG3
  • cs.AI2
  • cs.NE1
  • stat.ME1
  • stat.ML1

identity via Semantic Scholar / OpenAlex

works on
credal sets 1integral probability metrics 1multiclass classification 1total variation distance 1uncertainty quantification 1

From the 1 of 8 linked papers with an AI index.

most citedInformation Leakage Detection through Approximate Bayes-optimal Prediction

1 citations · 1 across the 6 of their papers we have counts for

collaborators
Showing cs.LGShow all

3 papers · 1 filter

cs.LG2026

Uncertainty Quantification for Regression: A Unified Framework based on kernel scores

Christopher Bülte, Yusuf Sale, Gitta Kutyniok +1

Regression tasks, notably in safety-critical domains, require reliable uncertainty quantification, yet the literature remains largely classification-focused. To address this, we in…

cs.LG2026

An Axiomatic Assessment of Entropy- and Variance-based Uncertainty Quantification in Regression

Christopher Bülte, Yusuf Sale, Timo Löhr +3

Uncertainty quantification is crucial in machine learning, yet most (axiomatic) studies of uncertainty measures focus on classification, leaving a gap in regression settings with l…

cs.LG2026

ConfoundingSHAP: Quantifying confounding strength in causal inference

Marie Brockschmidt, Santo M. A. R. Thies, Maresa Schröder +5

In causal inference, confounders are variables that influence both treatment decisions and outcomes. However, unlike as in randomized clinical trials, the treatment assignment mech…

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Not affiliated with arXiv. Researcher data from Semantic Scholar (ODC-BY) and OpenAlex.