Spike and slab variational Bayes for high dimensional logistic regression
Kolyan Ray, Botond Szabó, Gabriel Clara
摘要
Variational Bayes (VB) is a popular scalable alternative to Markov chain Monte Carlo for Bayesian inference. We study a mean-field spike and slab VB approximation of widely used Bayesian model selection priors in sparse high-dimensional logistic regression. We provide non-asymptotic theoretical guarantees for the VB posterior in both and prediction loss for a sparse truth, giving optimal (minimax) convergence rates. Since the VB algorithm does not depend on the unknown truth to achieve optimality, our results shed light on effective prior choices. We confirm the improved performance of our VB algorithm over common sparse VB approaches in a numerical study.
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引用它的顶会 Paper7
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- Label Correction of Crowdsourced Noisy Annotations with an Instance-Dependent Noise Transition ModelHui Guo, Boyu Wang, Grace YiNeurIPS 2023 · 被引用 21 次
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- Scalable Spike-and-SlabNiloy Biswas, Lester Mackey, Xiao-Li MengICML 2022 · 被引用 13 次
- Pointwise uncertainty quantification for sparse variational Gaussian process regression with a Brownian motion priorLuke Travis, Kolyan RayNeurIPS 2023 · 被引用 5 次
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