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Original Articles

Retrospective analysis and version improvement of the satellite-based drought composite index. A semi-arid Tensift-Morocco application

ORCID Icon, , , &
Pages 3069-3090 | Received 29 Mar 2020, Accepted 11 Oct 2020, Published online: 12 Nov 2020
 

Abstract

This paper aims to offer an improved version of the new composite drought monitoring index (CDMI) and to test its applicability in the context of Tensift watershed in Morocco. A synergistic approach incorporating the remote sensing techniques, hydrometeorological data, simulated data and agricultural statistics was used for this purpose. After assessing the performance of CDMI, estimated Soil Moisture Anomaly Indicator (ISMA) was processed, validated and incorporated to the composite model. Random Forest algorithm was used to determine the weight of composite model components. Apart from comparative mapping, Pearson's correlation statistical analysis, linear regression and dependency tests were used to assess the performance of the improved composite model (CDMIa_RF). The result show that CDMIa_RF is better correlated with several indices such as: the Standardized Precipitation Index (SPI), (R2=0.74); Hydrological Drought Index (R2=0.70); grain productivity (R2=0.70), CDMI (R2=0.95), Vegetation Health Index (VHI), (R2=0.87), and Normalized Vegetation Supply Water Index (NVSWI), (R2= 0.85).

Additional information

Funding

As part of the writing of this paper, we would first like to thank the African Regional Centre for Space Science and Technology (CRASTE-LF), the Mohamed VI Polytechnic University for the funded support and the International Water Research Institute (research laboratory) at the Moroccan Foundation for Advanced Science, Innovation and Research. Special Thanks to SUDMED Program and LMI TREMA (UCA-IRD) for providing us with the Tensift Data.

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