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Benjamin Eyre

3 accepted papers

2025

QuEst: Enhancing Estimates of Quantile-Based Distributional Measures Using Model Predictions

ICML 2025poster

As machine learning models grow increasingly competent, their predictions can supplement scarce or expensive data in various important domains. In support of this paradigm, algorithms have emerged to combine a small amount of high-fidelity observed data with a much larger set of imputed model output…

Cited by 0SourcePDFScholar
2025

Regression for the Mean: Auto-Evaluation and Inference with Few Labels through Post-hoc Regression

ICML 2025poster

The availability of machine learning systems that can effectively perform arbitrary tasks has led to synthetic labels from these systems being used in applications of statistical inference, such as data analysis or model evaluation. The Prediction Powered Inference (PPI) framework provides a way of…

Cited by 0SourcePDFScholar
2024

Out of the Ordinary: Spectrally Adapting Regression for Covariate Shift

ICML 2024poster

Designing deep neural network classifiers that perform robustly on distributions differing from the available training data is an active area of machine learning research. However, out-of-distribution generalization for regression---the analogous problem for modeling continuous targets---remains rel…

Cited by 1SourcePDFScholar