In: Annals of Forest Science, 2015, vol. 72, no. 3, p. 311-320
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In: Tree Physiology, 2016, vol. 36, no. 8, p. 942-953
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In: European Journal of Forest Research, 2015, vol. 134, no. 1, p. 75-87
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In: Annals of Forest Science, 2015, vol. 72, no. 3, p. 285-287
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In: Hydrobiologia, 2015, vol. 751, no. 1, p. 23-24
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In: Boundary-Layer Meteorology, 2015, vol. 155, no. 2, p. 249-270
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In: Regional Environmental Change, 2015, vol. 15, no. 8, p. 1531-1542
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In: Tree Physiology, 2018, vol. 38, no. 7, p. 941-952
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In: Earth’s Future, 2020, vol. 8, no. 7, p. -
Glacier mass loss is recognized as a major contributor to current sea level rise. However, large uncertainties remain in projections of glacier mass loss on global and regional scales. We present an ensemble of 288 glacier mass and area change projections for the 21st century based on 11 glacier models using up to 10 general circulation models and four Representative Concentration Pathways...
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In: Geophysical Research Letters, 2020, vol. 47, no. 2, p. e2019GL085578
Glaciers in the European Alps rapidly lose mass to adapt to changes in climate conditions. Here, we investigate the relationship and lag between climate forcing and geometric glacier response with a regional glacier evolution model accounting for ice dynamics. The volume loss occurring as a result of the glacier‐climate imbalance increased over the early 21st century, from about 35% in...
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