Title :
A quantitative model of soil moisture and instantaneous variation of land surface temperature
Author :
Wang, Anqi ; Shi, Jiancheng ; Gong, Huili ; Xie, Chao
Author_Institution :
Base of the State Lab. of Urban Environ. Processes & Digital Modeling, Capital Normal Univ., Beijing, China
Abstract :
Surface soil moisture is a key variable in many hydrological, climatological and ecological processes. Different types of remote sensing systems are currently used to infer soil moisture at different spatial and temporal scales, each with its specific characteristics and limitations. Using AMSR-E soil moisture and MODIS surface temperature (Ts) product, the authors discuss the relationship between the variation rate of land surface temperature and surface soil moisture. Selecting the plains region of Central United States as the study area, the authors propose the distribution triangle of the variation rate of land surface temperature and soil moisture, which is learned from the Ts-NDVI feature space theory. The range of soil moisture is lessening as the increase of instantaneous variation rate of land surface temperature, and the soil moisture value is going down as well. In this paper, Temperature Variation and Vegetation Index (TVVI), a new index containing the information of temperature variation and vegetation, is introduced. The authors also prove that TVVI and soil moisture show a steady relationship of exponential function, and build a quantitative model of soil moisture(SM) and instantaneous surface temperature variation(VTs).
Keywords :
land surface temperature; radiometry; remote sensing; soil; vegetation; AMSR-E soil moisture product; Central United States; MODIS surface temperature product; Ts-NDVI feature space theory; climatological process; ecological process; hydrological process; instantaneous surface temperature variation; land surface temperature; remote sensing systems; surface soil moisture; temperature variation index; vegetation index; Indexes; Land surface; Land surface temperature; Soil moisture; Temperature; Temperature sensors; Vegetation mapping; Soil moisture; exponential function; instantaneous variation; land surface temperature; quantitative model;
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2012 IEEE International
Conference_Location :
Munich
Print_ISBN :
978-1-4673-1160-1
Electronic_ISBN :
2153-6996
DOI :
10.1109/IGARSS.2012.6351469