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Most Influential AISTATS 2015 Paper · 2026-03 edition

Scalable Variational Gaussian Process Classification

James Hensman; Alexander Matthews; Zoubin Ghahramani

Venue
Conference on Artificial Intelligence and Statistics (AISTATS) 2015
Recognition
Most Influential AISTATS 2015 Paper (Rank No. 3)
Edition
2026-03
Impact factor
7
Certificate ID
54405443c7a1a059

Abstract

Gaussian process classification is a popular method with a number of appealing properties. We show how to scale the model within a variational inducing point framework, out-performing the state of the art on benchmark datasets. Importantly, the variational formulation an be exploited to allow classification in problems with millions of data points, as we demonstrate in experiments.

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