Publication | Open Access
Flood Detection in Gaofen-3 SAR Images via Fully Convolutional Networks
87
Citations
28
References
2018
Year
RadarRescue NeedConvolutional Neural NetworkImage AnalysisEngineeringData ScienceSynthetic Aperture RadarGeographyRemote SensingFlood DetectionRadar Image ProcessingDeep LearningDisaster DetectionFlooded AreaFlood Risk ManagementFlood Mapping
Emergency flood monitoring and rescue need to first detect flood areas. This paper provides a fast and novel flood detection method and applies it to Gaofen-3 SAR images. The fully convolutional network (FCN), a variant of VGG16, is utilized for flood mapping in this paper. Considering the requirement of flood detection, we fine-tune the model to get higher accuracy results with shorter training time and fewer training samples. Compared with state-of-the-art methods, our proposed algorithm not only gives robust and accurate detection results but also significantly reduces the detection time.
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