A semi-empirical approach for surface soil water content estimation from radar data without a-priori information on surface roughness

Abstract In this study, the spatial distribution of soil water content in an agricultural area of 30 km 2 in Southern Italy has been estimated by using high-resolution space-borne Synthetic Aperture Radar data. Multi-polarised SAR images acquired during the SIR-C mission in April 1994 have been analysed by using the semi-empirical surface backscattering model derived by Oh, Y., Sarabandi K., Ulaby F.T., 1992. An empirical model and an inversion technique for radar scattering from bare soil surface. IEEE Trans. Geosci. Remote Sensing, 30(2), 370381. A site-specific calibration procedure of the cited model has been proposed to derive soil dielectric constant values without a-priori information on the surface roughness by using ground measurements on a regular grid in two bare-soil fields. The calibrated model applied to L-band data reproduced quite satisfactorily the spatial variability of the soil dielectric constant in the two fields. Diversely, C-band data gave poor results. Successively, the calibrated Oh's model was applied to estimate the soil dielectric constant in bare soil and low vegetation fields of the entire irrigation district, where the output of a distributed simulation model of soil water balance were available. From the comparison between the Oh's backscattering model and the soil water balance model, it was confirmed that, under bare soil conditions, the values of soil water content near the soil surface estimated from SIR-C L-band data differ by ±20% from the simulated ones. Furthermore, as expected, the presence of a fractional vegetation cover, even if small, reduced the sensitivity of radar backscattering to soil moisture. The results of this study confirmed that L-band SAR data represent a minimum requirement for possible assimilation schemes in regional hydrological modelling.

[1]  Brian Brisco,et al.  Improved Spatial Mapping of Rainfall Events with Spaceborne SAR Imagery , 1983, IEEE Transactions on Geoscience and Remote Sensing.

[2]  J.J.B. Bronswijk,et al.  Modelling soil water dynamics in the unsaturated zone — State of the art , 1988 .

[3]  Pascale C. Dubois,et al.  Measuring soil moisture with imaging radars , 1995, IEEE Trans. Geosci. Remote. Sens..

[4]  A. P. Annan,et al.  Electromagnetic determination of soil water content: Measurements in coaxial transmission lines , 1980 .

[5]  Wilfried Brutsaert,et al.  Evaporation into the atmosphere : theory, history, and applications , 1982 .

[6]  Jiancheng Shi,et al.  Estimation of soil moisture and surface roughness parameters using L-band SAR measurements , 1995, Remote Sensing.

[7]  Guido D'Urso,et al.  Regional application of one-dimensional water flow models for irrigation management , 1999 .

[8]  Jiancheng Shi,et al.  A Comparison of Soil Moisture Retrieval Models Using SIR-C Measurements over the Little Washita River Watershed , 1997 .

[9]  Adrian K. Fung,et al.  Backscattering from a randomly rough dielectric surface , 1992, IEEE Trans. Geosci. Remote. Sens..

[10]  G. D. Urso Simulation and management of on-demand irrigation systems: a combined agrohydrological and remote sensing approach , 2001 .

[11]  Gert A. Schultz,et al.  Remote Sensing in Hydrology and Water Management , 2000 .

[12]  Richard K. Moore,et al.  Microwave Remote Sensing , 1999 .

[13]  Dirk H. Hoekman,et al.  Radar backscatter inversion techniques for estimation of surface soil moisture: EFEDA-Spain and HAPEX-Sahel case studies , 1999, IEEE Trans. Geosci. Remote. Sens..

[14]  Dara Entekhabi,et al.  Solving the inverse problem for soil moisture and temperature profiles by sequential assimilation of multifrequency remotely sensed observations , 1994, IEEE Trans. Geosci. Remote. Sens..

[15]  Jiancheng Shi,et al.  Estimation of soil moisture and surface roughness parameters using L-band SAR measurements , 1995, 1995 International Geoscience and Remote Sensing Symposium, IGARSS '95. Quantitative Remote Sensing for Science and Applications.

[16]  Dara Entekhabi,et al.  Tests of sequential data assimilation for retrieving profile soil moisture and temperature from observed L-band radiobrightness , 1999, IEEE Trans. Geosci. Remote. Sens..

[17]  Kamal Sarabandi,et al.  An empirical model and an inversion technique for radar scattering from bare soil surfaces , 1992, IEEE Trans. Geosci. Remote. Sens..

[18]  M. Zribi,et al.  A new empirical model to retrieve soil moisture and roughness from C-band radar data , 2003 .

[19]  G. Topp,et al.  Measurement of Soil Water Content using Time‐domain Reflectrometry (TDR): A Field Evaluation , 1985 .

[20]  W. Brutsaert Evaporation into the atmosphere , 1982 .

[21]  B. L. Huneycutt,et al.  The SIR-C/X-SAR synthetic aperture radar system , 1991 .

[22]  F. Ulaby,et al.  Radar mapping of surface soil moisture , 1996 .

[23]  T. Schmugge Remote sensing of soil moisture , 1976 .