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May 18, 2026Journal of Hydrology Regional Studies0 citationsOpen Access

VegET evapotranspiration for Africa: Continental-scale simulation, multi-product evaluation, and drought assessment

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KAKomlavi AkpotiNVNaga Manohar VelpuriMLMansoor Leh

Key Points

  • This research aims to develop a high-resolution dataset of actual evapotranspiration (ETa) for Africa using the VegET model.
  • Applied the VegET v2 model to simulate ETa for Africa from 2000-2021.
  • Validated VegET results against eddy covariance flux tower observations at eight sites.
  • Compared VegET with remote sensing-based products MODIS16, SSEBop, WaPOR, and GLEAM across various climates.
  • VegET achieved a correlation (r) of 0.8 with an RMSE of 25 mm month⁻¹ against observations.
  • In humid regions, VegET closely aligns with other products (r = 0.80–0.90; RMSE < 20 mm month⁻¹).
  • ETDI from VegET effectively detected major drought episodes across Africa, aiding in water and agriculture planning.

Abstract

Continental Africa, encompassing diverse climatic zones—tropical, arid, and temperate—and spanning major transboundary river basins such as the Nile, Niger, Congo, Volta, and Zambezi River Basins. The region exhibits pronounced hydroclimatic gradients and heterogeneous land use systems ranging from rainfed croplands and rangelands to dense tropical forests and irrigated schemes. Actual evapotranspiration (ETa) is a central component of the terrestrial water balance, governing the redistribution of water and energy between the land surface and the atmosphere. Accurate estimation of ETa at continental scale is critical for hydrological monitoring, water resource management, and climate adaptation, as well as for quantifying water, energy, and carbon fluxes that underpin sustainable development. In this study, we applied the agro-hydrologic VegET v2 model to simulate a new, high-resolution, continental-scale ETa dataset for Africa (2000–2021). The model results were benchmarked against four widely used remote sensing-based products—MODIS16 v6.1, SSEBop v6.1, WaPOR v3, and GLEAM v4.1a—across major climate zones, land use types, and River Basins, providing a comprehensive multi-product evaluation of evapotranspiration dynamics across the continent. Validation against eddy covariance flux tower observations at eight representative sites confirmed that VegET v2 accurately reproduces the seasonal dynamics of observed ETa, achieving a correlation (r) of 0.8 and an RMSE of 25 mm month⁻¹ —accuracy that is comparable to or higher than accuracies of satellite-based products MODIS16, SSEBop, and GLEAM. This study represents one of the first Africa-wide hydrological simulations of ETa, extending the VegET model beyond basin-scale applications. Intercomparisons reveal that VegET aligns closely with MODIS16, SSEBop, and GLEAM in humid and tropical regions (r = 0.80–0.90; RMSE < 20 mm month⁻¹), while greater discrepancies appear in arid and semi-arid zones, where WaPOR tends to overestimate ETa (RMSE ≥ 28 mm month⁻¹). Despite these differences, VegET effectively captures spatial and temporal ETa variability across rainfed croplands, forests, and savannas, supporting its utility in regional water balance assessments, water accounting, and drought monitoring. A key application of VegET v2 is the Evapotranspiration Deficit Index (ETDI), derived by integrating VegET-based ETa with potential evapotranspiration (PET) to quantify water stress. ETDI successfully captured major drought episodes across Africa, including persistent Sahelian and southern African dry spells, the 2020–2021 winter drought in the Maghreb, and the 2018–2019 austral summer drought in southern Africa, while identifying positive anomalies over central Africa indicative of recurrent wetness. These results underscore VegET’s capability as a hydrologically consistent, operational tool for continental ETa monitoring and drought assessment, offering support for basin-scale water balance studies, food security planning, and climate resilience across Africa’s diverse hydrological environments. • Simulated continental evapotranspiration in Africa (2000–2021) with VegET v2. • Validated VegET ETa against eddy covariance flux-tower observations. • Benchmarked VegET with MODIS16, SSEBop, WaPOR, and GLEAM across climates and land uses. • Soil-water balance modeling captures water-limited conditions in semi-arid Africa. • ETDI from VegET detected major droughts, supporting water and agriculture planning.

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Akpoti et al. (2026) studied this question.

synapsesocial.com/papers/6a0aabf55ba8ef6d83b6f976https://doi.org/10.1016/j.ejrh.2026.103511
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