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dc.contributor.authorGrings, Francisco
dc.contributor.authorBruscantini, Cintia A.
dc.contributor.authorSmucler, Ezequiel
dc.contributor.authorCarballo, Federico
dc.contributor.authorDillon, María Eugenia
dc.contributor.authorCollini, Estela Ángela
dc.contributor.authorSalvia, Mercedes
dc.contributor.authorKarszenbaum, Haydee
dc.date.accessioned2017-02-21T11:47:28Z
dc.date.available2017-02-21T11:47:28Z
dc.date.issued2015-08
dc.identifier10.1109/JSTARS.2015.2449237en
dc.identifier.issn2151-1535
dc.identifier.urihttp://hdl.handle.net/20.500.12160/133
dc.description.abstractIn this paper, an evaluation strategy for two-candidate satellite-derived SM products is presented. In particular, we analyze the performance of two candidate algorithms [soil moisture ocean salinity (SMOS)-based soil moisture (SM) and advanced scatterometer (ASCAT)-based SM] to monitor SM in Pampas Plain. The difficulties associated with commonly used evaluation techniques are addressed, and techniques that do not require ground-based observations are presented. In particular, we introduce comparisons with a land-surface model (GLDAS) and SM anomalies and triple collocation analyses. Then, we discuss the relevance of these analyses in the context of end-users requirements, and propose an extreme events-detection analysis based on anomalies of the standardized precipitation index (SPI) and satellite-based SM anomalies. The results show that: 1) both ASCAT and SMOS spatial anomalies data are able to reproduce the expected SM spatial patterns of the area; 2) both ASCAT and SMOS temporal anomalies are able to follow the measured in situ SM temporal anomalies; and 3) both products were able to monitor large SPI extremes at specific vegetation conditions.en
dc.language.isoenges
dc.publisherIEEE Geoscience and Remote Sensing Societyes
dc.subjectINDEX TERMSes
dc.subjectCROPLANDes
dc.subjectPASSIVE MICROWAVESes
dc.subjectSOIL MOISTUREes
dc.subjectVALIDATION STRATEGIESes
dc.titleValidation Strategies for Satellite-Based Soil Moisture Products Over Argentine Pampases
dc.typeArticlees

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