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Rina Foygel Barber

8 accepted papers

2024

Building a stable classifier with the inflated argmax

NeurIPS 2024poster

We propose a new framework for algorithmic stability in the context of multiclass classification. In practice, classification algorithms often operate by first assigning a continuous score (for instance, an estimated probability) to each possible label, then taking the maximizer---i.e., selecting th…

2024

Integrating Uncertainty Awareness into Conformalized Quantile Regression

AISTATS 2024poster

Conformalized Quantile Regression (CQR) is a recently proposed method for constructing prediction intervals for a response $Y$ given covariates $X$, without making distributional assumptions. However, existing constructions of CQR can be ineffective for problems where the quantile regressors perform…

2019

Conformal Prediction Under Covariate Shift

NeurIPS 2019poster

We extend conformal prediction methodology beyond the case of exchangeable data. In particular, we show that a weighted version of conformal prediction can be used to compute distribution-free prediction intervals for problems in which the test and training covariate distributions differ, but the li…

2015

The Log-Shift Penalty for Adaptive Estimation of Multiple Gaussian Graphical Models

AISTATS 2015poster

Sparse Gaussian graphical models characterize sparse dependence relationships between random variables in a network. To estimate multiple related Gaussian graphical models on the same set of variables, we formulate a hierarchical model, which leads to an optimization problem with a nonconvex log-shi…

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