BriefGPT.xyz
Sep, 2018
正交分解变分高斯过程
Orthogonally Decoupled Variational Gaussian Processes
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Hugh Salimbeni, Ching-An Cheng, Byron Boots, Marc Deisenroth
TL;DR
本文提出了一种替代解耦方法的方法,它采用正交基来建模标准耦合方法无法学习到的残差项,同时利用信息流形结构加速学习,实现了更快的收敛性能。
Abstract
gaussian processes
(GPs) provide a powerful non-parametric framework for reasoning over functions. Despite appealing theory, its superlinear computational and memory complexities have presented a long-standing challenge. State-of-the-art
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