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2011.12090
Cited By
AI Discovering a Coordinate System of Chemical Elements: Dual Representation by Variational Autoencoders
24 November 2020
A. Glushkovsky
DRL
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Papers citing
"AI Discovering a Coordinate System of Chemical Elements: Dual Representation by Variational Autoencoders"
9 / 9 papers shown
Title
Alternatives of Unsupervised Representations of Variables on the Latent Space
Alex Glushkovsky
SSL
BDL
DRL
22
0
0
26 Oct 2024
Twin Auto-Encoder Model for Learning Separable Representation in Cyberattack Detection
Phai Vu Dinh
Nguyen Quang Uy
D. Hoang
Diep N. Nguyen
Son Pham Bao
E. Dutkiewicz
AAML
86
2
0
22 Mar 2024
Learning Discrete Structured Variational Auto-Encoder using Natural Evolution Strategies
Alon Berliner
Guy Rotman
Yossi Adi
Roi Reichart
Tamir Hazan
BDL
DRL
37
4
0
03 May 2022
Designing Complex Experiments by Applying Unsupervised Machine Learning
A. Glushkovsky
35
0
0
29 Sep 2021
Recreation of the Periodic Table with an Unsupervised Machine Learning Algorithm
Minoru Kusaba
Chang Liu
Y. Koyama
K. Terakura
Ryo Yoshida
13
9
0
23 Dec 2019
Deep learning for molecular design - a review of the state of the art
Daniel C. Elton
Zois Boukouvalas
M. Fuge
Peter W. Chung
AI4CE
3DV
55
328
0
11 Mar 2019
Learning Disentangled Joint Continuous and Discrete Representations
Emilien Dupont
DRL
47
242
0
31 Mar 2018
Adversarial Autoencoders
Alireza Makhzani
Jonathon Shlens
Navdeep Jaitly
Ian Goodfellow
Brendan J. Frey
GAN
61
2,224
0
18 Nov 2015
Deep Learning of Representations: Looking Forward
Yoshua Bengio
115
679
0
02 May 2013
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