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Mohamed El Amine Seddik
Mohamed El Amine Seddik
Researcher at TII
Verified email at tii.ae - Homepage
Title
Cited by
Cited by
Year
Learning more universal representations for transfer-learning
Y Tamaazousti, H Le Borgne, C Hudelot, M Tamaazousti
IEEE transactions on pattern analysis and machine intelligence 42 (9), 2212-2224, 2019
732019
Random matrix theory proves that deep learning representations of gan-data behave as gaussian mixtures
MEA Seddik, C Louart, M Tamaazousti, R Couillet
International Conference on Machine Learning, 8573-8582, 2020
662020
Deep Multi-class Adversarial Specularity Removal
J Lin, MEA Seddik, M Tamaazousti, Y Tamaazousti, A Bartoli
arXiv preprint arXiv:1904.02672, 2019
332019
Kernel Random Matrices of Large Concentrated Data: The Example of GAN-Generated Images
MEA Seddik, M Tamaazousti, R Couillet
ICASSP 2019 - IEEE International Conference on Acoustics, Speech and Signal …, 2019
242019
Soil moisture estimation using Sentinel-1/-2 imagery coupled with cycleGAN for time-series gap filing
N Efremova, MEA Seddik, E Erten
IEEE Transactions on Geoscience and Remote Sensing 60, 1-11, 2021
172021
A Kernel Random Matrix-Based Approach for Sparse PCA
MEA Seddik, M Tamaazousti, R Couillet
ICLR 2019 - International Conference on Learning Representations, 2019
142019
When random tensors meet random matrices
MEA Seddik, M Guillaud, R Couillet
The Annals of Applied Probability 34 (1A), 203-248, 2024
132024
Generative collaborative networks for single image super-resolution
MEA Seddik, M Tamaazousti, J Lin
Neurocomputing 398, 293-303, 2020
112020
Deep miner: a deep and multi-branch network which mines rich and diverse features for person re-identification
A Benzine, MEA Seddik, J Desmarais
arXiv preprint arXiv:2102.09321, 2021
102021
The unexpected deterministic and universal behavior of large softmax classifiers
MEA Seddik, C Louart, R Couillet, M Tamaazousti
International Conference on Artificial Intelligence and Statistics, 1045-1053, 2021
92021
Node feature kernels increase graph convolutional network robustness
MEA Seddik, C Wu, JF Lutzeyer, M Vazirgiannis
International Conference on Artificial Intelligence and Statistics, 6225-6241, 2022
72022
Lightweight neural networks from pca & lda based distilled dense neural networks
MEA Seddik, H Essafi, A Benzine, M Tamaazousti
2020 IEEE International Conference on Image Processing (ICIP), 3060-3064, 2020
52020
SMArtCast: Predicting soil moisture interpolations into the future using Earth observation data in a deep learning framework
CJ Foley, S Vaze, MEA Seddiq, A Unagaev, N Efremova
arXiv preprint arXiv:2003.10823, 2020
52020
From outage probability to ALOHA MAC layer performance analysis in distributed WSNs
V Toldov, L Clavier, N Mitton
2018 IEEE Wireless Communications and Networking Conference (WCNC), 1-6, 2018
52018
Deciphering lasso-based classification through a large dimensional analysis of the iterative soft-thresholding algorithm
M Tiomoko, E Schnoor, MEA Seddik, I Colin, A Virmaux
International Conference on Machine Learning, 21449-21477, 2022
42022
Neural Networks Classify through the Class-wise Means of their Representations
MEA Seddik, M Tamaazousti
22021
Optimal Use of Multi-spectral Satellite Data with Convolutional Neural Networks
S Vaze, J Foley, M Seddiq, A Unagaev, N Efremova
arXiv preprint arXiv:2009.07000, 2020
22020
Learning from low rank tensor data: A random tensor theory perspective
MEA Seddik, M Tiomoko, A Decurninge, M Panov, M Gauillaud
Uncertainty in Artificial Intelligence, 1858-1867, 2023
12023
A Nested Matrix-Tensor Model for Noisy Multi-view Clustering
MEA Seddik, M Achab, H Goulart, M Debbah
arXiv preprint arXiv:2305.19992, 2023
12023
Optimizing orthogonalized tensor deflation via random tensor theory
MEA Seddik, M Mahfoud, M Debbah
arXiv preprint arXiv:2302.05798, 2023
12023
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Articles 1–20