Abstract
Earth Observation has proven to be a synoptic and objective source of information to derive crisis and damage maps. In case of flood events, often characterized by weather conditions which prevent the possibility of exploiting data acquired by optical sensors, synthetic aperture radar (SAR) sensors become the only space-born source of information due to their all-weather capability. In order to assure the delivery of damage maps as soon as possible after a disaster, the access and the exploitation of SAR data must be accelerated and simplified with respect to the current procedures. In this context, two issues needed to be addressed: fast access to large data archives, and provision of near real-time on demand processing services. This paper presents a near real-time SAR processing service to support the mapping of flooded areas. The service exploits Grid technology to manage large volumes of data and to provide the computational resources to cope with SAR processing demanding tasks. The algorithm for the implemented orthorectification of the final products is presented. The validation of the derived products shows a reliable accuracy for co-registration of half a pixel. The geolocation accuracy resulted below 100 m. The service makes a significant contribution to accelerating the access and exploitation of ESA SAR data.








Similar content being viewed by others
Explore related subjects
Discover the latest articles and news from researchers in related subjects, suggested using machine learning.Notes
According to CEOS definition, Level 3 products are data or retrieved geophysical parameters which have been spatially and/or temporally re-sampled (i.e. derived from Level 1 or 2 products), usually with some completeness and consistency. Such re-sampling may include averaging and compositing.
References
Cossu, R., Bally, P., Colin, O., Fusco, L.: Rapid mapping of flood events through the use of FAIRE. In: Proceedings of 6th Workshop on Remote Sensing for Disaster Management Applications, Pavia, Italy, September 11–12 (2008)
Cossu, R., Bally, Ph., Colin, O., Fusco, L.: ESA Grid processing on demand for fast access to Earth Observation data and rapid mapping of flood events. European Geosciences Union General Assembly 2008, Vienna, Austria, 13–18 April 2008
Cossu, R., Bally, P., Brito, F., Fellah, K., Goncalves, P., Fusco, L.: ESRIN GPOD: ASAR products handling and analysis for a quasi systematic flood monitoring service, 2007 ESA ENVISAT Symposium, Montreux Switzerland, 23–27 April 2007
Fusco, L., Cossu, R., Retscher, C.: Open Grid services for Envisat and earth observation applications in high performance computing in remote sensing. In: Antonio P. (ed.) Taylor and Francis Group, Chap. 13, Chapman & Hall/CRC (2007)
Fusco, L., Goncalves, P., Brito, F., Cossu, R., Retscher, C.: A new Grid-based system to assist user in ASAR handling and analysis. European Geoscience Union General Assembly, Vienna, 02–07 April 2006
Essential Climate Variables (ECVs): http://ioc3.unesco.org/oopc/obs/ecv.php
Paces, M., Bares, P., Cossu, R., Fusco, L.: PECS-GRID project—SAR image processing on Grid. In: Proceedings of 58th International Astronautical Congress, Hyderabad, India, 24–29 September 2007
Cossu, R., Brito, F., Fusco, L., Goncalves, P., Lavalle, M.: Global automatic orthorectification of ASAR products in ESRIN G-POD. In: Proceedings of ESA ENVISAT 2007 Symposium
Henderson, F.M., Lewis, A.J.: Manual of Remote Sensing, Principles and Applications of Imaging Radar, Wiley (1998). ISBN: 0-471-294063
Curlander, J.C., McDonough, R.N.: Synthetic Aperture Radar: Systems and Signal Processing, Wiley Series in Remote Sensing (1991). ISBN: 0-471-85770X
Sheng, Y., Alsdorf, D.E.: Automated geo-referencing and orthorectification of Amazon Basin-wide SAR Mosaics using SRTM DEM Data. IEEE Trans. Geosci. Rem. Sens. 43(8), 1929–1940 (2005) doi:10.1109/TGRS.2005.852160
Huang, G.M., Guo, J.K., Lv, J.G., Xiao, Z., Zhao, Z., Qiu, C.P.: Algorithms and experiment on sar image orthorectification based on polynomial rectification and height displacement correction, In: Proceedings of Isprs, 12–23 July 2004, Istanbul, Turkey
Ulander, L.: Radiometric slope correction of synthetic-aperture radar images. IEEE Trans. Geosci. Rem. Sens. 34(5), 1115–1122 (1996) doi:10.1109/36.536527
Pierce, L., Kellndorfer, J., Ulaby, F.: Practical SAR orthorectification. IGARSS 4, 2329–2331 (1996)
Kropatsch, W.G., Strobl, D.: The Generation of SAR Layover and Shadow Maps from Digital Elevation Models. IEEE Trans. Geosci. Rem. Sens. 28(No.I), (1990). doi:10.1109/36.45752
Petitdidier, M., Fusco, L., Vilotte, J.P., Retscher, C., Cossu, R.: Grid computing for new Earth Science paradigms. Invited paper to 2007 AAAS Annual Meeting, Science and Technology for Sustainable Well-Being, San Francisco, 15–19 February 2007
Lee, C., Percivall, G.: Standards-based computing capabilities for distributed geospatial applications. Computer 41(11), 50–57 (2008). doi:10.1109/MC.2008.468
Acknowledgments
We are grateful to Giovanna Trianni for her guidance in gathering and understanding the requirements of users of GSE RESPOND and “International Charter Space and Major Disasters”. We thank Olivier Colin and his team, as responsible for the operations of ESA G-POD.
Author information
Authors and Affiliations
Corresponding author
Rights and permissions
About this article
Cite this article
Cossu, R., Schoepfer, E., Bally, P. et al. Near real-time SAR-based processing to support flood monitoring. J Real-Time Image Proc 4, 205–218 (2009). https://doi.org/10.1007/s11554-009-0114-4
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s11554-009-0114-4