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Denoising without access to clean data using a partitioned autoencoder
v1v2 (latest)

Denoising without access to clean data using a partitioned autoencoder

20 September 2015
D. Stowell
Richard Turner
ArXiv (abs)PDFHTML

Papers citing "Denoising without access to clean data using a partitioned autoencoder"

9 / 9 papers shown
Title
Deep Convolutional Inverse Graphics Network
Deep Convolutional Inverse Graphics Network
Tejas D. Kulkarni
William F. Whitney
Pushmeet Kohli
J. Tenenbaum
DRLBDL
103
929
0
11 Mar 2015
An Analysis of Unsupervised Pre-training in Light of Recent Advances
An Analysis of Unsupervised Pre-training in Light of Recent Advances
T. Paine
Pooya Khorrami
Wei Han
Thomas S. Huang
SSL
74
56
0
20 Dec 2014
Discovering Hidden Factors of Variation in Deep Networks
Discovering Hidden Factors of Variation in Deep Networks
Brian Cheung
J. Livezey
Arjun K. Bansal
Bruno A. Olshausen
DRL
85
193
0
20 Dec 2014
Zero-bias autoencoders and the benefits of co-adapting features
Zero-bias autoencoders and the benefits of co-adapting features
K. Konda
Roland Memisevic
David M. Krueger
AI4CE
80
92
0
13 Feb 2014
Exact solutions to the nonlinear dynamics of learning in deep linear
  neural networks
Exact solutions to the nonlinear dynamics of learning in deep linear neural networks
Andrew M. Saxe
James L. McClelland
Surya Ganguli
ODL
178
1,849
0
20 Dec 2013
Improved multiple birdsong tracking with distribution derivative method
  and Markov renewal process clustering
Improved multiple birdsong tracking with distribution derivative method and Markov renewal process clustering
D. Stowell
Saso Musevic
J. Bonada
Mark D. Plumbley
54
13
0
14 Feb 2013
ADADELTA: An Adaptive Learning Rate Method
ADADELTA: An Adaptive Learning Rate Method
Matthew D. Zeiler
ODL
155
6,625
0
22 Dec 2012
Theano: new features and speed improvements
Theano: new features and speed improvements
Frédéric Bastien
Pascal Lamblin
Razvan Pascanu
James Bergstra
Ian Goodfellow
Arnaud Bergeron
Nicolas Bouchard
David Warde-Farley
Yoshua Bengio
94
1,420
0
23 Nov 2012
Segregating event streams and noise with a Markov renewal process model
Segregating event streams and noise with a Markov renewal process model
D. Stowell
Mark D. Plumbley
57
23
0
13 Nov 2012
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