×

You are using an outdated browser that does not fully support the intranda viewer.
As a result, some pages may not be displayed correctly.

We recommend you use one of the following browsers:

Full text

Title
Mesures physiques et signatures en télédétection

832
Harris A. R., and Mason I. M., 1992. An extension to the split-window technique giving improved
atmospheric correction and total water vapour. Int. J. Remote Sens. 13: 881-892.
Jedlovec G. J., 1990. Precipitable water estimation from high-resolution split-window radiance
measurements. J. Appl. Meteor. 29: 863-876.
Kaufmann Y. J., and Gao B.-C., 1992. Remote sensing of water vapor in the Near IR from EOS/MODIS.
IEEE Trans. Geosci. Remote Sensning. 30: 871-884.
Kleespies TJ„ and McMillin L.M., 1990. Retrieval of precipitable water from observations in the splitwindow
splitwindow over varying surface temperatures. J. Appl. Meteor. 29: 851-862.
Kneizys FX, Shettle EP, Abreu LW, Anderson GP, Chetwynd JH, Gallery WO, Selby JEA, Clough SA
(1988) Users guide to LOWTRAN 7. Technical Report AFGL-TR-88-0177, Optical/Infrared
Technology Division, U.S. Air Force Geophysics Laboratory, Hascom Air Force Base,
Massachusetts.
Li Z.-L., Becker F., Stoll M. P., and Sobrino J. A., 1994. Intercomparison of an improved local split
window with other split window algorithms for estimating land surface temperature from AVHRR
data. J. Geophys. Res. (submitted).
McClain EP, Pichel WG, Walton CC (1985) Comparative performance of AVHRR-Based multichannel sea
surface temperatures. J. Geophysical Res. 90: 11,587-11,601.
McMillin L. M ., 1975. Estimation of sea surface temperature from two infrared window measurements
with different absorption. J. Geophys. Res. 80: 5113-5117.
Prabhakara C, Dalu G, Lo R.C., and Nath, N.R., 1979. Remote sensing of seasonal distribution of
precipitable water vapor over the oceans and the inference of boundary-layer structure. Mon. Weather
Rev., 107: 1388-1401.
Price J. C., 1984. Land surface temperature measurements from the split window channels of the NOAA 7
AVHRR. J. Geophys. Res. D5: 7231-7237.
Schluessel P., 1989. Satellite derived low level atmospheric water vapor content from synergy of AVHRR
with HIRS. Int. J. Remote Sens. 10: 705-721.
Scott N. A., and Chedin A., 1981. A fast line by line method for atmospheric absorption computations:
The Automatized Atmospheric Absorption Atlas. J. Appl. Meteorol. 20: 802-812.
Smith W. L. et al., 1985. The simultaneous retrieval export package. Second International TOVS Study
Conference. Feb. 18-22, Igls, pp. 224-253.
Sobrino, J. A., Coll C., and Caselles V., 1991. Atmospheric correction for land surface temperature using
NOAA-11 AVHRR Channels 4 and 5. Remote Sens. Environ. 38: 19-34.
Sobrino, J. A., Caselles V., and Coll C., 1993. Theoretical split-window algorithms for determining the
actual surface temperature. II Nuovo Cimento. 16:219-236.
Sobrino, J. A., Z.-L., Li, and Stoll M.P., 1994. Imact of the atmospheric transmittance and total water
vapor content in the algorithms for estimating sateliite sea surface temperaturs. IEEE Trans. Geosci.
Remote Sensing, (in press).
Sobrino, J. A., Z.-L., Li, Stoll M.P. and F. Becker, 1994. Improvements in the split-window technique for
land surface temperature determination. IEEE Trans. Geosci. Remote Sensing, (in press).
Wilkerson J. C., and Earle M. D., 1990. A study of differences between environmental reports by ships in
the voluntary observing program and measurements from NOAA buoys. J. Geophys. Res. 95: 3373-
3385.