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2306.03521
Cited By
Machine learning in and out of equilibrium
6 June 2023
Shishir Adhikari
Alkan Kabakcciouglu
A. Strang
Deniz Yuret
M. Hinczewski
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Papers citing
"Machine learning in and out of equilibrium"
8 / 8 papers shown
Title
The Limiting Dynamics of SGD: Modified Loss, Phase Space Oscillations, and Anomalous Diffusion
D. Kunin
Javier Sagastuy-Breña
Lauren Gillespie
Eshed Margalit
Hidenori Tanaka
Surya Ganguli
Daniel L. K. Yamins
81
20
0
19 Jul 2021
Fluctuation-dissipation relations for stochastic gradient descent
Sho Yaida
104
75
0
28 Sep 2018
Unsupervised Learning by Competing Hidden Units
Dmitry Krotov
J. Hopfield
SSL
71
168
0
26 Jun 2018
A high-bias, low-variance introduction to Machine Learning for physicists
Pankaj Mehta
Marin Bukov
Ching-Hao Wang
A. G. Day
C. Richardson
Charles K. Fisher
D. Schwab
AI4CE
108
879
0
23 Mar 2018
Visualizing the Loss Landscape of Neural Nets
Hao Li
Zheng Xu
Gavin Taylor
Christoph Studer
Tom Goldstein
266
1,901
0
28 Dec 2017
Three Factors Influencing Minima in SGD
Stanislaw Jastrzebski
Zachary Kenton
Devansh Arpit
Nicolas Ballas
Asja Fischer
Yoshua Bengio
Amos Storkey
80
463
0
13 Nov 2017
Stochastic gradient descent performs variational inference, converges to limit cycles for deep networks
Pratik Chaudhari
Stefano Soatto
MLT
73
304
0
30 Oct 2017
Adam: A Method for Stochastic Optimization
Diederik P. Kingma
Jimmy Ba
ODL
2.1K
150,433
0
22 Dec 2014
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