Abstract

Abstract. The reduction of drought impacts may be achieved through sustainable drought management and proactive measures against drought disaster. Accurate and timely provision of drought information is essential. In this study, drought forecasting models to provide high-resolution drought information based on drought indicators for ungauged areas were developed. The developed models predict drought indices of the 6-month Standardized Precipitation Index (SPI6) and the 6-month Standardized Precipitation Evapotranspiration Index (SPEI6). An interpolation method based on multiquadric spline interpolation method as well as three machine learning models were tested. Three machine learning models of Decision Tree, Random Forest, and Extremely Randomized Trees were tested to enhance the provision of drought initial conditions based on remote sensing data, since initial conditions is one of the most important factors for drought forecasting. Machine learning-based methods performed better than interpolation methods for both classification and regression, and the methods using climatology data outperformed the methods using long-range forecast. The model based on climatological data and the machine learning method outperformed overall.

Highlights

  • 1.1 Drought forecast modelsThe reduction of drought impacts may be achieved through sustainable drought management and proactive measures against drought disaster

  • Drought forecasting models to provide high-resolution drought information based on drought indicators for ungauged areas were developed

  • It is recommended to forecast SPI6 or SPEI6 values based on machine learning using climatological data to provide spatially distributed drought information with a spatial resolution of 0.05 × 0.05 °, as used in this study

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Summary

Drought forecast models

The reduction of drought impacts may be achieved through sustainable drought management and proactive measures against drought disaster. Accurate and timely provision of drought information is essential. Drought forecasting models to provide high-resolution drought information based on drought indicators for ungauged areas were developed

Study area and data
RESULTS AND DISCUSSION
CONCLUSIONS
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