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Scalable Natural Gradient Langevin Dynamics in Practice

Scalable Natural Gradient Langevin Dynamics in Practice

7 June 2018
Henri Palacci
H. Hess
    BDL
ArXiv (abs)PDFHTML

Papers citing "Scalable Natural Gradient Langevin Dynamics in Practice"

7 / 7 papers shown
Title
Stochastic Gradient Descent as Approximate Bayesian Inference
Stochastic Gradient Descent as Approximate Bayesian Inference
Stephan Mandt
Matthew D. Hoffman
David M. Blei
BDL
59
599
0
13 Apr 2017
Structured and Efficient Variational Deep Learning with Matrix Gaussian
  Posteriors
Structured and Efficient Variational Deep Learning with Matrix Gaussian Posteriors
Christos Louizos
Max Welling
BDL
62
257
0
15 Mar 2016
Dropout as a Bayesian Approximation: Representing Model Uncertainty in
  Deep Learning
Dropout as a Bayesian Approximation: Representing Model Uncertainty in Deep Learning
Y. Gal
Zoubin Ghahramani
UQCVBDL
847
9,346
0
06 Jun 2015
Weight Uncertainty in Neural Networks
Weight Uncertainty in Neural Networks
Charles Blundell
Julien Cornebise
Koray Kavukcuoglu
Daan Wierstra
UQCVBDL
192
1,892
0
20 May 2015
Optimizing Neural Networks with Kronecker-factored Approximate Curvature
Optimizing Neural Networks with Kronecker-factored Approximate Curvature
James Martens
Roger C. Grosse
ODL
104
1,023
0
19 Mar 2015
Probabilistic Backpropagation for Scalable Learning of Bayesian Neural
  Networks
Probabilistic Backpropagation for Scalable Learning of Bayesian Neural Networks
José Miguel Hernández-Lobato
Ryan P. Adams
UQCVBDL
142
945
0
18 Feb 2015
(Non-) asymptotic properties of Stochastic Gradient Langevin Dynamics
(Non-) asymptotic properties of Stochastic Gradient Langevin Dynamics
Sebastian J. Vollmer
K. Zygalakis
and Yee Whye Teh
87
49
0
02 Jan 2015
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