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http://krishi.icar.gov.in/jspui/handle/123456789/34449
Title: | Downscaling of MODIS thermal imagery |
Other Titles: | Not Available |
Authors: | Kishan Singh Rawat Vinay Kumar Sehgal Shibendu S. Ray |
ICAR Data Use Licennce: | http://krishi.icar.gov.in/PDF/ICAR_Data_Use_Licence.pdf |
Author's Affiliated institute: | ICAR::Indian Agricultural Research Institute Sathyabama Institute of Science and Technology, Chennai Mahalanobis National Crop Forecast Centre |
Published/ Complete Date: | 2018-12-28 |
Project Code: | Not Available |
Keywords: | Remote Sensing Thermal MODIS Landsat Temperature |
Publisher: | Elsevier B.V. |
Citation: | Not Available |
Series/Report no.: | Not Available; |
Abstract/Description: | In this paper, integration of two models TsHARP (Tsharp) and Thin plate spline (TPS) has been performed for spatial sharpening of 1 km (coarse) resolution of MODIS thermal imagery to 250 m resolution. Afterwards it was validated with LANDSAT-7 thermal data (after resampled to 250 m pixel). The results showed that LST based on integration of two (TsHARP and TPS) models is consistent with true data (LANDSAT-7 ETM+, thermal data). We have observed R2 at pure cropped area, cropped area with low settlement and cropped area with high settlement is showing, 0.74 (Multi R = 0.80, Adju R = 0.75 and p = .001), 0.72 (Multi R = 0.78, Adju R = 72 and p = .001) and 0.71 (Multi R = 0.78, Adju R = 0.71 and p = .001) respectively. While overall R2 of 0.69 (Multi R = 0.76, Adju R = 0.71 and p = .000) for all categories of classes (cropped area + cropped area with low settlement + cropped area with high settlement). LST shows root mean square error (RMSE) = 0.307 °C, Relative-RMSE (R-RMSE) = 0.167 °C, mean absolute error (MAE) = 0.033 °C, normalized RMSE (NRMSE) = 0.018 °C, index of agreement (d) = 0.99, RMSE-observations standard deviation ratio (RSR) = 0.39 and RMSE% = 0.02 for merging process based LST. We conclude that combination of TsHARP and TPS model has a great potential to estimate LST at 250 m with high temporal resolution. This LST can be used as an input in various models to estimate other components which are LST dependent. |
Description: | Not Available |
ISSN: | Not Available |
Type(s) of content: | Research Paper |
Sponsors: | Not Available |
Language: | English |
Name of Journal: | The Egyptian Journal of Remote Sensing and Space Science |
NAAS Rating: | Not Available |
Volume No.: | 22(1) |
Page Number: | 49-58 |
Name of the Division/Regional Station: | Division of Agricultural Physics |
Source, DOI or any other URL: | https://doi.org/10.1016/j.ejrs.2018.01.001 |
URI: | http://krishi.icar.gov.in/jspui/handle/123456789/34449 |
Appears in Collections: | CS-IARI-Publication |
Files in This Item:
File | Description | Size | Format | |
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Kishan_MODIS_2019.pdf | 3.77 MB | Adobe PDF | View/Open |
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