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Pablo Ribalta Lorenzo
Pablo Ribalta Lorenzo
NVIDIA Corporation
Verified email at ieee.org
Title
Cited by
Cited by
Year
Identifying the best machine learning algorithms for brain tumor segmentation, progression assessment, and overall survival prediction in the BRATS challenge
S Bakas, M Reyes, A Jakab, S Bauer, M Rempfler, A Crimi, RT Shinohara, ...
arXiv preprint arXiv:1811.02629, 2018
17792018
Particle swarm optimization for hyper-parameter selection in deep neural networks
PR Lorenzo, J Nalepa, M Kawulok, LS Ramos, JR Pastor
Proceedings of the genetic and evolutionary computation conference, 481-488, 2017
2802017
OpenFold: Retraining AlphaFold2 yields new insights into its learning mechanisms and capacity for generalization
G Ahdritz, N Bouatta, S Kadyan, Q Xia, W Gerecke, TJ O’Donnell, ...
Biorxiv, 2022.11. 20.517210, 2022
982022
Hyper-parameter selection in deep neural networks using parallel particle swarm optimization
PR Lorenzo, J Nalepa, LS Ramos, JR Pastor
Proceedings of the genetic and evolutionary computation conference companion …, 2017
852017
Hyperspectral band selection using attention-based convolutional neural networks
PR Lorenzo, L Tulczyjew, M Marcinkiewicz, J Nalepa
IEEE Access 8, 42384-42403, 2020
642020
Segmenting brain tumors from FLAIR MRI using fully convolutional neural networks
PR Lorenzo, J Nalepa, B Bobek-Billewicz, P Wawrzyniak, G Mrukwa, ...
Computer methods and programs in biomedicine 176, 135-148, 2019
602019
Memetic evolution of deep neural networks
PR Lorenzo, J Nalepa
Proceedings of the genetic and evolutionary computation conference, 505-512, 2018
582018
Fully-automated deep learning-powered system for DCE-MRI analysis of brain tumors
J Nalepa, PR Lorenzo, M Marcinkiewicz, B Bobek-Billewicz, ...
Artificial intelligence in medicine 102, 101769, 2020
552020
A reliability study on CNNs for critical embedded systems
MA Neggaz, I Alouani, PR Lorenzo, S Niar
2018 IEEE 36th International Conference on Computer Design (ICCD), 476-479, 2018
532018
Towards resource-frugal deep convolutional neural networks for hyperspectral image segmentation
J Nalepa, M Antoniak, M Myller, PR Lorenzo, M Marcinkiewicz
Microprocessors and Microsystems 73, 102994, 2020
482020
Data augmentation via image registration
J Nalepa, G Mrukwa, S Piechaczek, PR Lorenzo, M Marcinkiewicz, ...
2019 IEEE International Conference on Image Processing (ICIP), 4250-4254, 2019
322019
Segmenting brain tumors from MRI using cascaded multi-modal U-Nets
M Marcinkiewicz, J Nalepa, PR Lorenzo, W Dudzik, G Mrukwa
Brainlesion: Glioma, Multiple Sclerosis, Stroke and Traumatic Brain Injuries …, 2019
322019
Band selection from hyperspectral images using attention-based convolutional neural networks
PR Lorenzo, L Tulczyjew, M Marcinkiewicz, J Nalepa
arXiv preprint arXiv:1811.02667, 2018
222018
Automatic brain tumor segmentation using a two-stage multi-modal fcnn
M Marcinkiewicz, J Nalepa, PR Lorenzo, W Dudzik, G Mrukwa
Brainlesion: Glioma, Multiple Sclerosis, Stroke and Traumatic Brain Injuries …, 2018
152018
Hyperspectral band selection using attention-based convolutional neural networks
P Ribalta Lorenzo, L Tulczyjew, M Marcinkiewicz, J Nalepa
IEEE Access 8, 42384-42403, 2020
132020
Multi-modal U-Nets with boundary loss and pre-training for brain tumor segmentation
P Ribalta Lorenzo, M Marcinkiewicz, J Nalepa
Brainlesion: Glioma, Multiple Sclerosis, Stroke and Traumatic Brain Injuries …, 2020
112020
Convergence analysis of PSO for hyper-parameter selection in deep neural networks
J Nalepa, PR Lorenzo
Advances on P2P, Parallel, Grid, Cloud and Internet Computing: Proceedings …, 2018
112018
Segmentation of hyperspectral images using quantized convolutional neural networks
PR Lorenzo, M Marcinkiewicz, J Nalepa
2018 21st Euromicro Conference on Digital System Design (DSD), 260-267, 2018
42018
ECONIB: AI for fully-automated segmentation and assessment of glioma from DCE-MRI
J Nalepa, PR Lorenzo, M Marcinkiewicz, B Bobek-Billewicz, ...
European Congress of Radiology-ECR 2019, 2019
2019
Band Selection from Hyperspectral Images Using Attention-based Convolutional Neural Networks
P Ribalta Lorenzo, L Tulczyjew, M Marcinkiewicz, J Nalepa
arXiv e-prints, arXiv: 1811.02667, 2018
2018
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