Title :
An Observing System Simulation Experiment (OSSE) for the Aquarius/SAC-D soil moisture product: An investigation of forward/retrieval model asymmetries
Author :
Perna, P. ; Bruscantini, C. ; Ferrazzoli, P. ; Grings, F. ; Karszenbaum, H. ; Crow, W.
Author_Institution :
Inst. de Astron. y Fis. del Espacio (IAFE), Buenos Aires, Argentina
Abstract :
An Observing System Simulation Experiment (OSSE) for the Aquarius/SAC-D mission has been developed for assessing the accuracy of soil moisture retrieval from passive and active L band. So far, this OSSE has been successfully exploited to study the artifacts in the retrieved soil moisture associated to: (1) uncertainties and aggregation of the ancillary parameters needed for the retrieval and (2) instrumental noise effects. However, effects due to forward and retrieval model incompatibilities have not yet been studied. In this paper, OSSE attempts to capture the influence of this effect over estimated soil moisture. The emissivity of real surfaces is very complex and is strongly dependent on land cover type and condition. In particular, surface covered by average to dense vegetation presents complex scattering properties, heavily related to canopy structure. The OSSE implements a forward model using a theoretical approach based on the electromagnetic modeling of vegetation elements and high order radiative transfer theory. In this way, the difficulties related to retrieving soil moisture from passive data with a simple model are studied. The accuracy of the soil moisture estimation is analyzed on a set of selected footprints in order to illustrate the impact of discrepancies between both models. In general, retrieved soil moisture performs worse over dense vegetated areas and under wet conditions. Furthermore, accuracy is highly dependent on land cover.
Keywords :
geophysical signal processing; hydrological techniques; hydrology; moisture; radiative transfer; radiometry; remote sensing; soil; vegetation; Aquarius/SAC-D soil moisture product; L band; OSSE; ancillary parameter; canopy structure; electromagnetic modeling; forward model asymmetry; high order radiative transfer theory; instrumental noise effect; land condition; land cover type; observing system simulation experiment; retrieval model asymmetry; vegetation; Instruments; Market research; Microwave radiometry; Scattering; Soil moisture; Uncertainty; Vegetation mapping; Aquarius; OSSE; radiative transfer; soil moisture; theoretical model;
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2012 IEEE International
Conference_Location :
Munich
Print_ISBN :
978-1-4673-1160-1
Electronic_ISBN :
2153-6996
DOI :
10.1109/IGARSS.2012.6350895