Abstract:A selective variance reduction (SVR) script is presented that applies linear regression models to the principal components (PCs) of multi-temporal night monthly averaged land surface temperature (LST) imagery, in an attempt to spit the variance associated to elevation, latitude, longitude. The recently released version 6, MODIS LST data (MYD11C2) with spatial resolution 0.05°is used while the method is applied in SW USA. The innovation relies on the use of un-standardized PCs. Thus, the reconstructed LST shoul… Show more
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