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Robert Hu

5 accepted papers

2022

Explaining Preferences with Shapley Values

NeurIPS 2022accept

While preference modelling is becoming one of the pillars of machine learning, the problem of preference explanation remains challenging and underexplored. In this paper, we propose \textsc{Pref-SHAP}, a Shapley value-based model explanation framework for pairwise comparison data. We derive the appr…

2022

Generalized Variational Inference in Function Spaces: Gaussian Measures meet Bayesian Deep Learning

NeurIPS 2022accept

We develop a framework for generalized variational inference in infinite-dimensional function spaces and use it to construct a method termed Gaussian Wasserstein inference (GWI). GWI leverages the Wasserstein distance between Gaussian measures on the Hilbert space of square-integrable functions in o…

2022

Giga-scale Kernel Matrix-Vector Multiplication on GPU

NeurIPS 2022accept

Kernel matrix-vector multiplication (KMVM) is a foundational operation in machine learning and scientific computing. However, as KMVM tends to scale quadratically in both memory and time, applications are often limited by these computational constraints. In this paper, we propose a novel approximati…

2022

Survival regression with proper scoring rules and monotonic neural networks

AISTATS 2022poster

We consider frequently used scoring rules for right-censored survival regression models such as time-dependent concordance, survival-CRPS, integrated Brier score and integrated binomial log-likelihood, and prove that neither of them is a proper scoring rule. This means that the true survival distrib…