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2112.14877
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A Unified and Constructive Framework for the Universality of Neural Networks
30 December 2021
T. Bui-Thanh
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Papers citing
"A Unified and Constructive Framework for the Universality of Neural Networks"
10 / 10 papers shown
Title
The Barron Space and the Flow-induced Function Spaces for Neural Network Models
E. Weinan
Chao Ma
Lei Wu
71
110
0
18 Jun 2019
The Deep Ritz method: A deep learning-based numerical algorithm for solving variational problems
E. Weinan
Ting Yu
115
1,380
0
30 Sep 2017
Self-Normalizing Neural Networks
Günter Klambauer
Thomas Unterthiner
Andreas Mayr
Sepp Hochreiter
428
2,507
0
08 Jun 2017
Sigmoid-Weighted Linear Units for Neural Network Function Approximation in Reinforcement Learning
Stefan Elfwing
E. Uchibe
Kenji Doya
126
1,717
0
10 Feb 2017
Error bounds for approximations with deep ReLU networks
Dmitry Yarotsky
187
1,227
0
03 Oct 2016
Approximation by Combinations of ReLU and Squared ReLU Ridge Functions with
ℓ
1
\ell^1
ℓ
1
and
ℓ
0
\ell^0
ℓ
0
Controls
Jason M. Klusowski
Andrew R. Barron
247
143
0
26 Jul 2016
Gaussian Error Linear Units (GELUs)
Dan Hendrycks
Kevin Gimpel
167
4,994
0
27 Jun 2016
A single hidden layer feedforward network with only one neuron in the hidden layer can approximate any univariate function
Namig J. Guliyev
V. Ismailov
29
79
0
31 Dec 2015
Fast and Accurate Deep Network Learning by Exponential Linear Units (ELUs)
Djork-Arné Clevert
Thomas Unterthiner
Sepp Hochreiter
289
5,518
0
23 Nov 2015
Delving Deep into Rectifiers: Surpassing Human-Level Performance on ImageNet Classification
Kaiming He
Xinming Zhang
Shaoqing Ren
Jian Sun
VLM
296
18,587
0
06 Feb 2015
1