ANALYSIS OF DROUGHT DYNAMICS BASED ON MODIS DATA AND THE HURST INDEX

Хабибуллаева, Dilnoza, Berdimbetov, Timur, Tureniyazova, Asiya, Nietullayeva, Sahibjamal, Madetov, Dauranbek

Techscience.uz - техника фанлари долзарб масалалри · 2025-yil

Annotatsiya

Monitoring and forecasting droughts are crucial for mitigating the impacts of climate change on water resources and agriculture. This review summarizes modern methods for analyzing and predicting drought dynamics using MODIS (Moderate Resolution Imaging Spectroradiometer) data and the Hurst index. The advantages and limitations of MODIS-based indices (NDVI, LST, VHI) and the application of the rescaled range (R/S) method for assessing drought persistence are discussed. Special attention is given to the combination of remote sensing and statistical analysis techniques to improve early warning systems. Challenges such as data heterogeneity and regional variations are also addressed, along with future directions, including the use of machine learning and high-resolution data. 

Maqola ma’lumotlari
MualliflarХабибуллаева, Dilnoza, Berdimbetov, Timur, Tureniyazova, Asiya, Nietullayeva, Sahibjamal, Madetov, Dauranbek
JurnalTechscience.uz - техника фанлари долзарб масалалри
Nashr sanasi2025-05-11
Jild3
Son1
Betlar6-9
TilRus
DOI10.47390/ts3030-3702v3i1y2025n01

Kalit so‘zlar

drought forecasting, MODIS, Hurst index, NDVI, LST, Vegetation Health Index (VHI), R/S analysis, прогнозирование засух, MODIS, индекс Хёрста, NDVI, LST, индекс здоровья растительности (VHI), R/S-анализ, qurgʻoqchilik, MODIS, Xerst indeksi, NDVI, LST, salomatlik indeksi

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