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Nature Geoscience· 2026Q1

Committed Antarctic Ice Sheet mass loss by the end of the twenty-first century

Yucheng Lin, Xuebin Zhang, Nicholas R. Golledge, Robert E. Kopp et al.

Short summary

The Antarctic Ice Sheet is committed to losing mass throughout the 21st century, even under aggressive emissions reductions, with higher emissions driving greater loss and potentially up to 25.4 cm of sea-level rise by 2100.

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Key points

  • Antarctic Ice Sheet committed to mass loss this century, irrespective of emissions scenario.
  • Higher emissions scenarios increase Antarctic mass loss, with a 95th percentile projection of 25.4 cm sea-level rise by 2100.
  • Machine-learning emulation and Bayesian calibration reduced projection bias against satellite observations.
  • Effective risk management requires rapid emissions reductions and improved climate model parameterizations.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract The Antarctic Ice Sheet is the largest source of uncertainty in sea-level rise projections, with uncertainties propagating through emissions scenarios, atmosphere–ocean general circulation models, ice-sheet dynamics and sea-level physics. In ice-sheet model intercomparison exercises, these uncertainties—typically attributed to intermodel differences—stem from modelling choices that may bias ensembles towards commonly adopted approaches regardless of observational consistency. Here we quantify how each individual physical assumption cascades into projection uncertainty using a machine-learning emulation framework, which also enables Bayesian calibration against satellite observations to reduce projection bias. Our results suggest it is very likely (≥0.92 probability) that the Antarctic Ice Sheet is committed to twenty-first-century mass loss, even under aggressive emissions-reduction scenarios. Higher emissions drive greater Antarctic mass loss by 2100 (≥0.89 probability), directly elevating near-term coastal risks. Under very high-emissions scenarios, we identify cascading mechanisms that could produce up to 25.4 cm of sea-level rise by 2100 (95th percentile; median = 15.7 cm) while remaining consistent with satellite observations. Effective management of these risks to densely populated coastal communities requires rapid emissions reductions and improved constraints on climate model selection, sliding laws and ice-shelf melt parameterizations.

The authors' abstract, as published at the source. Nature Geoscience, 2026 · DOI ↗

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Field: Atmospheric Science

Atmospheric ScienceEarth and Planetary Sciences