Reconstructing daytime and nighttime MODIS land surface temperature in desert areas using multi-channel singular spectrum analysis

被引:9
作者
Aliabad, Fahime Arabi [1 ]
Zare, Mohammad [2 ]
Malamiri, Hamidreza Ghafarian [1 ]
Pouriyeh, Amanehalsadat [3 ]
Shahabi, Himan [4 ,5 ]
Ghaderpour, Ebrahim [6 ]
Mazzanti, Paolo [6 ]
机构
[1] Yazd Univ, Fac Geog, Dept Remote Sensing, Univ Blvd, Yazd 8915818411, Iran
[2] Yazd Univ, Fac Nat Resources & Desert Studies, Univ Blvd, Yazd 8915818411, Iran
[3] Islamic Azad Univ, Dept Environm Sci, Sci & Res Branch, Daneshgah Blvd,Simon Bulivar Blvd, Tehran 1477893855, Iran
[4] Silesian Tech Univ, Inst Phys, Div Geochronol & Environm Isotopes, Konarskiego 22B, PL-44100 Gliwicen, Poland
[5] Univ Kurdistan, Fac Nat Resources, Dept Geomorphol, Sanandaj 6617715175, Iran
[6] Sapienza Univ Rome, Dept Earth Sci, P le Aldo Moro 5, I-00185 Rome, Italy
关键词
Cloud; Gap-filling; Hot and dry climate; Land surface temperature; Multi-channel singular spectrum analysis; SPLIT-WINDOW ALGORITHM; DAILY MAXIMUM; ACCURACY; DYNAMICS; CYCLE; GAPS;
D O I
10.1016/j.ecoinf.2024.102830
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The availability of continuous spatiotemporal land surface temperature (LST) with high resolution is critical for many disciplines including hydrology, meteorology, ecology, and geology. Like other remote sensing data, satellite-based LST is also encountered with the cloud issue. In this research, over 5000 daytime and nighttime MODIS-LST images are utilized during 2014-2020 for Yazd-Ardakan plain in Yazd, Iran. The multi-channel singular spectrum analysis (MSSA) model is employed to reconstruct missing values due to dusts, clouds, and sensor defect. The selection of eigenvalues is based on the Monte Carlo test and the spectral analysis of eigenvalues. It is found that enlarging the window size has no effect on the number of significant components of the signal which account for the most variance of the data. However, data variance changes for all the three components. Employing two images per day, window sizes 60, 180, 360, and 720 are examined for reconstructing one year LST, where these selections are based on monthly, seasonal, semi-annual, and annual LST cycles, respectively. The results show that window size 60 had the least computational cost and the highest accuracy with RMSE (root mean square error) of 2.6 degrees C for the entire study region and 1.4 degrees C for a selected pixel. The gap-filling performance of MSSA is also compared with the one by the harmonic analysis of time series (HANTS) model, showing the superiority of MSSA with an improved RMSE of about 2.7 degrees C for the study region. In addition, daytime and nighttime LST series for different land covers are compared. Lastly, the maximum, minimum, and average LST for each day and night as well as average and standard deviation of LST images in the seven-year-long time series are also computed.
引用
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页数:16
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