comparison of some split-window algorithms to estimate land surface temperature from avhrr data in southeastern tehran,

Authors

s.m. r. behbahani

a. rahimikhoob

m. h. nazarifar

abstract

land surface temperature (lst) is a significant parameter for many applications. many studies have proposedvarious algorithms, such as the split-window method, for retrieving surface temperatures from two spectrallyadjacent thermal infrared bands of satellite data. each algorithm is developed for a limited study area andapplication. in this paper, as part of developing an optimal split-window method in the southeast of tehran province,iran, four commonly applied algorithms to retrieve the lst from avhrr were compared. this study was carriedout in a wheat farm site located in the pakdasht agricultural region. measurements of lst over the farm were madewith a manual infrared radiometer at the time of noaa overpass for 18 days of may to june 2004. these days werecloud free over the study area. a total of 18 noaa images were acquired for the days that lst measurements weremade. the temperatures derived by the different split-window algorithms were compared to ground truthmeasurements. the performance of the split window algorithms was checked with three statistical indices: root meansquare error (rmse), mean bias error (mbe) and coefficient of determination (r2). the results showed that theulivieri split-window algorithm produced the lowest value of rmse and mbe (2.71 and 0.26 k, respectively) andits highest value of r2 (0.92) gave more accurate results than the other algorithms.

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Journal title:
desert

Publisher: international desert research center (idrc), university of tehran

ISSN 2008-0875

volume 14

issue 2 2009

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