Land Surface Temperature Super-Resolution with a Scale-Invariance-Free Neural Approach: Application to MODIS
Romuald Ait-Bachir (ODYSSEY, IMT Atlantique - MEE, Lab-STICC\_OSE),, Carlos Granero-Belinchon (ODYSSEY, IMT Atlantique - MEE, Lab-STICC\_OSE),, Aur\'elie Michel, Julien Michel (CESBIO, CNES), Xavier Briottet, Lucas, Drumetz (Lab-STICC\_OSE, IMT Atlantique - MEE, ODYSSEY)

TL;DR
This paper introduces a novel scale-invariance-free neural network approach for super-resolving Land Surface Temperature (LST) from MODIS data, outperforming existing methods and providing a new evaluation database.
Contribution
The work presents a scale-invariance-free training method for neural networks and implements two models that better recover high-resolution LST maps, with improved texture detail over state-of-the-art techniques.
Findings
SIF-CNN-SR1 outperforms existing super-resolution methods.
The proposed models effectively recover fine-scale textures.
A new ASTER-MODIS LST evaluation database is released.
Abstract
Due to the trade-off between the temporal and spatial resolution of thermal spaceborne sensors, super-resolution methods have been developed to provide fine-scale Land SurfaceTemperature (LST) maps. Most of them are trained at low resolution but applied at fine resolution, and so they require a scale-invariance hypothesis that is not always adapted. Themain contribution of this work is the introduction of a Scale-Invariance-Free approach for training Neural Network (NN) models, and the implementation of two NN models, calledScale-Invariance-Free Convolutional Neural Network for Super-Resolution (SIF-CNN-SR) for the super-resolution of MODIS LST products. The Scale-Invariance-Free approach consists ontraining the models in order to provide LST maps at high spatial resolution that recover the initial LST when they are degraded at low resolution and that contain fine-scale texturesinformed…
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Taxonomy
TopicsCryospheric studies and observations · Urban Heat Island Mitigation · Photoacoustic and Ultrasonic Imaging
