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Dive into the research topics where Moustapha Cisse is active.

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Featured researches published by Moustapha Cisse.


Archive | 2018

ConvNets and ImageNet Beyond Accuracy: Understanding Mistakes and Uncovering Biases

Pierre Stock; Moustapha Cisse

ConvNets and ImageNet have driven the recent success of deep learning for image classification. However, the marked slowdown in performance improvement combined with the lack of robustness of neural networks to adversarial examples and their tendency to exhibit undesirable biases question the reliability of these methods. This work investigates these questions from the perspective of the end-user by using human subject studies and explanations. The contribution of this study is threefold. We first experimentally demonstrate that the accuracy and robustness of ConvNets measured on Imagenet are vastly underestimated. Next, we show that explanations can mitigate the impact of misclassified adversarial examples from the perspective of the end-user. We finally introduce a novel tool for uncovering the undesirable biases learned by a model. These contributions also show that explanations are a valuable tool both for improving our understanding of ConvNets’ predictions and for designing more reliable models.


international conference on machine learning | 2017

Parseval Networks: Improving Robustness to Adversarial Examples

Moustapha Cisse; Piotr Bojanowski; Edouard Grave; Yann N. Dauphin; Nicolas Usunier


international conference on learning representations | 2018

Countering Adversarial Images using Input Transformations

Chuan Guo; Mayank Rana; Moustapha Cisse; Laurens van der Maaten


neural information processing systems | 2013

Robust Bloom Filters for Large MultiLabel Classification Tasks

Moustapha Cisse; Nicolas Usunier; Thierry Artières; Patrick Gallinari


international conference on learning representations | 2018

mixup: Beyond Empirical Risk Minimization

Hongyi Zhang; Moustapha Cisse; Yann N. Dauphin; David Lopez-Paz


international conference on machine learning | 2017

Efficient Softmax Approximation for GPUs

Edouard Grave; Armand Joulin; Moustapha Cisse; David Grangier; Hervé Jégou


arXiv: Machine Learning | 2017

Houdini: Fooling Deep Structured Prediction Models.

Moustapha Cisse; Yossi Adi; Natalia Neverova; Joseph Keshet


arXiv: Learning | 2010

Deep Self-Taught Learning for Handwritten Character Recognition

Frédéric Bastien; Yoshua Bengio; Arnaud Bergeron; Nicolas Boulanger-Lewandowski; Thomas M. Breuel; Youssouf Chherawala; Moustapha Cisse; Myriam Côté; Dumitru Erhan; Jeremy Eustache; Xavier Glorot; Xavier Muller; Sylvain Pannetier Lebeuf; Razvan Pascanu; Salah Rifai; François Savard; Guillaume Sicard


neural information processing systems | 2017

Houdini: Fooling Deep Structured Visual and Speech Recognition Models with Adversarial Examples

Moustapha Cisse; Yossi Adi; Natalia Neverova; Joseph Keshet


arXiv: Learning | 2017

ConvNets and ImageNet Beyond Accuracy: Explanations, Bias Detection, Adversarial Examples and Model Criticism.

Pierre Stock; Moustapha Cisse

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Edouard Grave

University of California

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