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Yoshua Bengio

Researcher at Université de Montréal

Publications -  1146
Citations -  534376

Yoshua Bengio is an academic researcher from Université de Montréal. The author has contributed to research in topics: Artificial neural network & Deep learning. The author has an hindex of 202, co-authored 1033 publications receiving 420313 citations. Previous affiliations of Yoshua Bengio include McGill University & Centre de Recherches Mathématiques.

Papers
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A Common GPU n-Dimensional Array for Python and C

TL;DR: This paper proposes and presents a first version of a common GPU n-dimensional array (tensor) named GpuNdArray that works with both CUDA and OpenCL and will be usable from Python, C, and possibly other programming languages.

Deep Learning for NLP (without Magic) References

TL;DR: A framework for learning predictive structures from multiple tasks and unlabeled data and a neural probabilistic language model for this framework are presented.
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State-Reification Networks: Improving Generalization by Modeling the Distribution of Hidden Representations

TL;DR: It is shown that this state-reification method helps neural nets to generalize better, especially when labeled data are sparse, and also helps overcome the challenge of achieving robust generalization with adversarial training.
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Régularisation du prix des options : Stacking

TL;DR: The CIRANO as discussed by the authors is an organisme sans but lucratif constitue en vertu de la Loi des compagnies du Quebec (Loi de l'Ontario) and is composed of several equipes de recherche.