Towards Daily High-resolution Inundation Observations using Deep Learning and EO
Antara Dasgupta, Lasse Hybbeneth, Bj\"orn Waske

TL;DR
This paper develops a deep learning approach using CNNs to generate high-resolution daily flood inundation maps by fusing satellite data from Sentinel, GPM, and SMAP, improving flood monitoring capabilities.
Contribution
It introduces a novel data fusion method with CNNs to produce daily high-resolution flood maps, leveraging multiple satellite sources and hydrological predictors.
Findings
Best model achieved a PR-AUC of 0.85
UNet outperformed SegNet in flood mapping accuracy
Fusion of satellite data improves flood inundation prediction
Abstract
Satellite remote sensing presents a cost-effective solution for synoptic flood monitoring, and satellite-derived flood maps provide a computationally efficient alternative to numerical flood inundation models traditionally used. While satellites do offer timely inundation information when they happen to cover an ongoing flood event, they are limited by their spatiotemporal resolution in terms of their ability to dynamically monitor flood evolution at various scales. Constantly improving access to new satellite data sources as well as big data processing capabilities has unlocked an unprecedented number of possibilities in terms of data-driven solutions to this problem. Specifically, the fusion of data from satellites, such as the Copernicus Sentinels, which have high spatial and low temporal resolution, with data from NASA SMAP and GPM missions, which have low spatial but high temporal…
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Taxonomy
TopicsFlood Risk Assessment and Management · Tropical and Extratropical Cyclones Research · Anomaly Detection Techniques and Applications
MethodsMax Pooling · Batch Normalization · Convolution · Kaiming Initialization · *Communicated@Fast*How Do I Communicate to Expedia? · Softmax · SegNet
