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Climatic Change · 2020 · Vol. 163 · Issue 3 · Springer
Global Water Models (GWMs), which include Global Hydrological, Land Surface, and Dynamic Global Vegetation Models, present valuable tools for quantifying climate change impacts on hydrological processes in the data scarce high latitudes. Here we performed a systematic model performance evaluation in six major Pan-Arctic watersheds for different hydrological indicators (monthly and seasonal discharge, extremes, trends (or lack...
Global Change Biology · 2017 · Vol. 23 · Issue 8 · Wiley
Turnover concepts in state‐of‐the‐art global vegetation models ( GVM s) account for various processes, but are often highly simplified and may not include an adequate representation of the dominant processes that shape vegetation carbon turnover rates in real forest ecosystems at a large spatial scale. Here, we evaluate vegetation carbon turnover processes in GVM s participating in the Inter‐Sectoral Impact Model Intercomparis...
Global Change Biology · 2015 · Vol. 21 · Issue 9 · Wiley
Identifying the relative importance of climatic and other environmental controls on the interannual variability and trends in global land surface phenology and greenness is challenging. Firstly, quantifications of land surface phenology and greenness dynamics are impaired by differences between satellite data sets and phenology detection methods. Secondly, dynamic global vegetation models ( DGVM s) that can be used to diagnose...
International Journal of Climatology · 2010 · Vol. 30 · Issue 13 · Wiley
This study describes the coupling of the dynamic global vegetation model (DGVM), Lund–Potsdam–Jena Model for managed land (LPJmL), with the general circulation model (GCM), Simplified Parameterizations primitivE Equation DYnamics model (SPEEDY), to study the feedbacks between land‐use change and natural vegetation dynamics and climate during the 20th century. We show that anthropogenic land‐use change had a stronger effect on...
Global Change Biology · 2007 · Vol. 13 · Issue 3 · Wiley
In order to better assess the role of agriculture within the global climate‐vegetation system, we present a model of the managed planetary land surface, Lund–Potsdam–Jena managed Land (LPJmL), which simulates biophysical and biogeochemical processes as well as productivity and yield of the most important crops worldwide, using a concept of crop functional types (CFTs). Based on the LPJ‐Dynamic Global Vegetation Model, LPJmL si...