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Tanya Nair
Tanya Nair
Floodbase
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Title
Cited by
Cited by
Year
Exploring uncertainty measures in deep networks for multiple sclerosis lesion detection and segmentation
T Nair, D Precup, DL Arnold, T Arbel
Medical image analysis 59, 101557, 2020
4462020
Propagating uncertainty across cascaded medical imaging tasks for improved deep learning inference
R Mehta, T Christinck, T Nair, A Bussy, S Premasiri, M Costantino, ...
IEEE Transactions on Medical Imaging 41 (2), 360-373, 2021
232021
Propagating uncertainty across cascaded medical imaging tasks for improved deep learning inference
R Mehta, T Christinck, T Nair, P Lemaitre, D Arnold, T Arbel
Uncertainty for Safe Utilization of Machine Learning in Medical Imaging and …, 2019
172019
1357P A deep radiomics approach to assess PD-L1 expression and clinical outcomes in patients with advanced non-small cell lung cancer treated with immune checkpoint inhibitors …
M Tonneau, K Phan, S Kazandjian, A Elkrief, J Panasci, C Richard, ...
Annals of Oncology 32, S1029, 2021
12021
Adversarially learned mixture model
A Jesson, C Low-Kam, T Nair, F Soudan, F Chandelier, N Chapados
arXiv preprint arXiv:1807.05344, 2018
12018
Rapid inundation mapping using the US National Water Model, satellite observations, and a convolutional neural network
JM Frame, T Nair, V Sunkara, P Popien, S Chakrabarti, T Anderson, ...
Authorea Preprints, 2024
2024
Improving Digital Representations of Inundation with Deep Learning: from satellite data fusion in Bangladesh to the National Water Model-Satellite fusion in CONUS
B Tellman, J Giezendanner, A Saunders, A Islam, AS Islam, S Chakrabarti, ...
AGU23, 2024
2024
Addressing and understanding compound flood risk-from floodplain development to flood injustice-with satellites and machine learning
B Tellman, J Giezendanner, Z Zhang, JM Frame, L Belury, H Friedrich, ...
AGU23, 2023
2023
Flood maps across CONUS using the US National Water Model, satellite observations and convolutional neural networks
JM Frame, V Sunkara, T Nair, P Popien, M Goodman, S Chakrabarti, ...
AGU Fall Meeting Abstracts 2022, H26B-06, 2022
2022
A Remote Sensing Approach to Bridging the Gaps in FEMA Flood Risk Maps
A Lawal, B Tellman, JM Frame, N Leach, T Nair, T Anderson, V Sunkara
AGU Fall Meeting Abstracts 2022, NH35C-0504, 2022
2022
Intelligent flood maps: combining satellite observations with hydrologic modeling for high temporal resolution flood maps
JM Frame, V Sunkara, S Chakrabarti, C Doyle, M Goodman, T Nair, ...
Frontiers in Hydrology 2022, 141-04, 2022
2022
Deep Hydrology: Hourly, Gap-Free Flood Maps Through Joint Satellite and Hydrologic Modelling
TNVSJ Frame, P Popien, S Chakrabarti
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