Ikuti
César Quilodrán-Casas
César Quilodrán-Casas
Grantham Institute; Department of Earth Science and Engineering, Imperial College London
Email yang diverifikasi di imperial.ac.uk
Judul
Dikutip oleh
Dikutip oleh
Tahun
Machine learning with data assimilation and uncertainty quantification for dynamical systems: a review
S Cheng, C Quilodrán-Casas, S Ouala, A Farchi, C Liu, P Tandeo, ...
IEEE/CAA Journal of Automatica Sinica 10 (6), 1361-1387, 2023
1492023
Data learning: Integrating data assimilation and machine learning
C Buizza, CQ Casas, P Nadler, J Mack, S Marrone, Z Titus, C Le Cornec, ...
Journal of Computational Science 58, 101525, 2022
962022
Using 137Cs and 210Pbex and other sediment source fingerprints to document suspended sediment sources in small forested catchments in south-central Chile
P Schuller, DE Walling, A Iroumé, C Quilodrán, A Castillo, A Navas
Journal of environmental radioactivity 124, 147-159, 2013
892013
Med-unic: Unifying cross-lingual medical vision-language pre-training by diminishing bias
Z Wan, C Liu, M Zhang, J Fu, B Wang, S Cheng, L Ma, C Quilodrán-Casas, ...
Advances in Neural Information Processing Systems 36, 2024
652024
Digital twins based on bidirectional LSTM and GAN for modelling the COVID-19 pandemic
C Quilodrán-Casas, VLS Silva, R Arcucci, CE Heaney, YK Guo, CC Pain
Neurocomputing 470, 11-28, 2022
562022
A reduced order deep data assimilation model
CQ Casas, R Arcucci, P Wu, C Pain, YK Guo
Physica D: Nonlinear Phenomena 412, 132615, 2020
542020
An efficient digital twin based on machine learning SVD autoencoder and generalised latent assimilation for nuclear reactor physics
H Gong, S Cheng, Z Chen, Q Li, C Quilodrán-Casas, D Xiao, R Arcucci
Annals of nuclear energy 179, 109431, 2022
532022
Parameter flexible wildfire prediction using machine learning techniques: Forward and inverse modelling
S Cheng, Y Jin, SP Harrison, C Quilodrán-Casas, IC Prentice, YK Guo, ...
Remote Sensing 14 (13), 3228, 2022
502022
Surfactant-laden droplet size prediction in a flow-focusing microchannel: a data-driven approach
L Chagot, C Quilodrán-Casas, M Kalli, NM Kovalchuk, MJH Simmons, ...
Lab on a Chip 22 (20), 3848-3859, 2022
342022
Data assimilation in the latent space of a neural network
M Amendola, R Arcucci, L Mottet, CQ Casas, S Fan, C Pain, P Linden, ...
arXiv preprint arXiv:2012.12056, 2020
33*2020
Adversarial autoencoders and adversarial LSTM for improved forecasts of urban air pollution simulations
C Quilodrán-Casas, R Arcucci, L Mottet, Y Guo, C Pain
arXiv preprint arXiv:2104.06297, 2021
262021
Adversarially trained LSTMs on reduced order models of urban air pollution simulations
C Quilodrán-Casas, R Arcucci, C Pain, Y Guo
arXiv preprint arXiv:2101.01568, 2021
182021
T3d: Towards 3d medical image understanding through vision-language pre-training
C Liu, C Ouyang, Y Chen, CC Quilodrán-Casas, L Ma, J Fu, Y Guo, ...
arXiv preprint arXiv:2312.01529, 2023
162023
Urban air pollution forecasts generated from latent space representations
C Quilodrán Casas, R Arcucci, Y Guo
ICLR 2020 Workshop on Integration of Deep Neural Models and Differential …, 2020
132020
Fast ocean data assimilation and forecasting using a neural-network reduced-space regional ocean model of the north Brazil current
CAQ Casas
Imperial College London, 2018
112018
Forecasting tropical cyclones with cascaded diffusion models
P Nath, P Shukla, S Wang, C Quilodrán-Casas
arXiv preprint arXiv:2310.01690, 2023
82023
Quantifying the temporal variation of the contribution of fine sediment sources to sediment yields from Chilean forested catchments during harvesting operations
P Schuller, DE Walling, A Iroumé, C Quilodrán, A Castillo
Revista Bosque 42 (2), 231-244, 2021
82021
Latent GAN: using a latent space-based GAN for rapid forecasting of CFD models
J Afzali, CQ Casas, R Arcucci
International Conference on Computational Science, 360-372, 2021
62021
Reduced order surrogate modelling and Latent Assimilation for dynamical systems
S Cheng, C Quilodrán-Casas, R Arcucci
International Conference on Computational Science, 31-44, 2022
52022
A domain decomposition reduced order model with data assimilation (dd-roda)
R Arcucci, CQ Casas, D Xiao, L Mottet, F Fang, P Wu, C Pain, YK Guo
Parallel Computing: Technology Trends, 189-198, 2020
52020
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