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ICLR 2013: Scottsdale, AZ, USA
- Yoshua Bengio, Yann LeCun:

1st International Conference on Learning Representations, ICLR 2013, Scottsdale, Arizona, USA, May 2-4, 2013, Conference Track Proceedings. 2013
Oral Presentation
- Luke Bornn, Yutian Chen, Nando de Freitas, Mareija Eskelin, Jing Fang, Max Welling:

Herded Gibbs Sampling. - Çaglar Gülçehre, Yoshua Bengio:

Knowledge Matters: Importance of Prior Information for Optimization. - Charles F. Cadieu, Ha Hong, Dan Yamins, Nicolas Pinto, Najib J. Majaj, James J. DiCarlo:

The Neural Representation Benchmark and its Evaluation on Brain and Machine. - Felix Bauer, Roland Memisevic:

Feature grouping from spatially constrained multiplicative interaction. - Jason Tyler Rolfe, Yann LeCun:

Discriminative Recurrent Sparse Auto-Encoders. - Guido Montúfar, Jason Morton:

Discrete Restricted Boltzmann Machines. - Camille Couprie, Clément Farabet, Laurent Najman

, Yann LeCun:
Indoor Semantic Segmentation using depth information. - Matthew D. Zeiler, Rob Fergus:

Stochastic Pooling for Regularization of Deep Convolutional Neural Networks. - Luis Gonzalo Sánchez Giraldo, José C. Príncipe:

Information Theoretic Learning with Infinitely Divisible Kernels. - Guillaume Alain, Yoshua Bengio, Salah Rifai:

Regularized Auto-Encoders Estimate Local Statistics. - Alan L. Yuille, Roozbeh Mottaghi:

Complexity of Representation and Inference in Compositional Models with Part Sharing. - Dong Yu, Michael L. Seltzer, Jinyu Li, Jui-Ting Huang, Frank Seide:

Feature Learning in Deep Neural Networks - A Study on Speech Recognition Tasks. - Laurens van der Maaten:

Barnes-Hut-SNE.
Poster Presentation
- Judy Hoffman, Erik Rodner, Jeff Donahue, Kate Saenko, Trevor Darrell:

Efficient Learning of Domain-invariant Image Representations. - Christian Scheible, Hinrich Schütze:

Cutting Recursive Autoencoder Trees. - Rostislav Goroshin, Yann LeCun:

Saturating Auto-Encoder. - Sebastian Hitziger, Maureen Clerc, Alexandre Gramfort, Sandrine Saillet, Christian G. Bénar, Théodore Papadopoulo:

Jitter-Adaptive Dictionary Learning - Application to Multi-Trial Neuroelectric Signals. - Ryan Kiros:

Training Neural Networks with Stochastic Hessian-Free Optimization. - Guillaume Desjardins, Razvan Pascanu, Aaron C. Courville, Yoshua Bengio:

Metric-Free Natural Gradient for Joint-Training of Boltzmann Machines. - Tom Schaul, Yann LeCun:

Adaptive learning rates and parallelization for stochastic, sparse, non-smooth gradients. - Vamsi K. Potluru, Sergey M. Plis, Jonathan Le Roux, Barak A. Pearlmutter

, Vince D. Calhoun, Thomas P. Hayes:
Block Coordinate Descent for Sparse NMF. - Hugo Van hamme:

The Diagonalized Newton Algorithm for Nonnegative Matrix Factorization. - Nicolas Le Roux, Francis R. Bach:

Local Component Analysis.

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last updated on 2026-07-12 22:57 CEST by the 






