Full text: Mesures physiques et signatures en télédétection

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favorably (increase in magnitude) to the decrease of ks. After this date the slope A increases; we think that this 
is due to the developing vegetation (see fig.l) which maskes the soil. 
8. CONCLUSION 
In this paper we reached the conclusion that ERS1 WSC can be used to assess vegetation. Before the vegetation 
cover is too important, we have a good qualitative relationship between measured soil moisture and a 0 in 18-21° 
range. As it is difficult to have soil measurements over 50*50Km area, we take advantage of WSC spatial 
resolution to extract soil roughness and soil moisture through empirical model. Validation of our inversion 
method will rely on “mesoscale” modeling results. 
Theoretical studies have shown that, to assess soil moisture, vegetation effects on signal may be taken into 
account. 
Our futures steps will consider: 
-Vegetation cover study in term of soil moisture estimation. 
-Validation of surface roughness concept at large scale. 
9. REFERENCES 
1. Kerr Y.H. et al. 1992, Accurate land surface temperature retrieval from AVHRR data with use of improved 
Split Window algorithm, Rem.SenJEnviron., 41,197-209 
2. QiJ. et al. 1993, Modified Soil Adjusted Vegetation Index (MSAVI), Part I: Modeling and examples, Water 
Res.Research, In press. 
3. Кегг Y.H. and Njoku 1990, A Semiempirical Model For Interpreting Microwave Emission From Semiarid 
Land Surface as Seen From Space. IEEE Trans, on Geosc. and Remote Sensing. Vol.28. No. 3, MAY 1990. 
4. Goutorbe J.P. et al. 1992, Haoex-Sahel experiment plan. 150p. 
5. Goutorbe J.P. et al. 1993, Hapex-Sahel, general presentation, Annales Geophysicae, In press. 
6. Prince S.D. et al. 1993, Remote Sensing in Hapex Sahel, Remote SensJEnviron., accepted for publication. 
7. Ulaby F. T. et al. 1978, Microwave Вackscatiering Dependence on Surface roughness, soil moisture, and soil 
texture : Part I - Bare soil. 
8. Ulaby F. T. et a/.1979, Microwave Backscattering Dependence on Surface roughness, soil moisture, and soil 
texture: Part II - Vegetation - Covered Soil. 
9. Ulaby F. T., Moore R. K., Fung A .K. 1981, Microwave Remote Sensing, volume 1, Addison Wesley. 
10. Ulaby F. T., Moore R. K., Fung A. K. 1982, Microwave Remote Sensing, volume 2, Addison Wesley. 
11. Ulaby F. T„ Moore R. K„ Fung A. K. 1986, Microwave Remote Sensing, volume 3, Addison Wesley. 
12. ERS - 1 User Handbook ESA SP - 1148, May 1992. 
13. Monteny B.A. et al. 1993, Hapex-Sahel 1992 Campagnes de mesures. Editions ORSTOM, 200p. 
14. Taupin D. et al. 1993, EPSAT Niger. Campagne 1992 . ORSTOM DMT, 64pt-appendix. 
15. Rahman H. and Dedieu G. 1993, SMAC : A Simplified Method for Atmospheric Correction of Satelite 
Measurements in the solar Spectrum. IntJ.Remote Sensing, In press. 
16. Oh Y. et al. 1992, An Empirical Model and inversion Technique for Radar Scattering from Bare Soil 
Surface. IEEE Trans, on Geosc. and Remote Sensing. VolJO, No. 2, MARCH 1992. 
17. Dobson M.C. et al. 1985, Microwave dielectric behavior of wet soils - Part П : Dielectric mixing models, 
IEEE Trans. Geosc. and Remote Sensing. 
ACKNOWLEDGEMENTS 
The authors are indebted to D. Vidal madjar for the discussion which initiated this study, to ESA, IFREMER 
and L. Cunin AGRYMET for providing us with excellent satelite data, to A. Chanzy, A. Chehbouni, L. 
Laguerre, T. Lebel, and B. Monteny for the ground work during the HAPEX Experiment, and to finally to T. 
Valero and S. Wagner for the intensive satellite data preprocessing.
	        
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