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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Bevington, A., and Menounos, B.
Title
Accelerated change in the glaciated environments of western Canada revealed through trend analysis of optical satellite imagery
Year
2022
Publication Outlet
Remote Sensing of Environment, 270, 112862
DOI
https://doi.org/10.1016/j.rse.2021.112862
Citation
Bevington, A., and Menounos, B., 2022. Accelerated change in the glaciated environments of western Canada revealed through trend analysis of optical satellite imagery. Remote Sensing of Environment, 270, 112862.
Abstract
The retreat of mountain glaciers affects mountain hazards and hydrology, and new methods are needed to rapidly map glacier retreat at planetary scales. We automatically map 14,329 glaciers (30,063 km2) in British Columbia and Alberta, Canada, from 1984 to 2020 using satellite image archives from the Landsat 4, 5, 7 and 8 missions and reveal an acceleration in area loss that commenced in 2011. Glacier fragmentation, disappearance, and proglacial lake development also accelerated, as did the retreat of glaciers to higher elevations. Our annually-resolved method relies on the existence of previously published and manually validated glacier inventories from the mid-1980s and mid-2000's. Our methods performed well for clean ice glaciers, had occasional errors when proglacial lakes were present, and consistently underestimated the area of debris-covered glaciers. Clean ice glacier area loss accelerated sevenfold between the early [1984–2010] and late [2011−2020] epochs. This acceleration yielded rates of area shrinkage of −49 ± 7 km2 a−1 [early] and − 340 ± 40 km2 a−1 [late] with accelerated losses (32-fold increase) for small glaciers on Vancouver Island over the last decade. Glacier fragmentation accelerated from 26 ± 5.6 fragments a−1 to 88 ± 39 fragments a−1. About 1141 glaciers fell below our 0.05 km2 detection limit and so disappeared from our database, representing a loss of 8%. Proglacial lake area growth accelerated from 9.2 ± 1.1 km2 a−1 to 49 ± 4.5 km2 a−1. We also observed an acceleration in the upwards migration of median glacier elevations for clean ice glaciers from 0.31 ± 0.08 m a−1 to 4.7 ± 0.7 m a−1. Our workflow demonstrates the advantages of annual resolution glacier inventories and contributes towards the implementation of planetary mapping of glaciers and glacier attributes at annual resolution.

Highlights
• We produced annually-resolved [1984–2020], western Canadian glacier inventory.
• Glaciers retreat, fragmentation and disappearance accelerated over last decade.
• Our workflow could yield planetary-scale, annual glacier inventories.
Program Affiliations
GWF: Global Water Futures
Project Affiliations
GWF-MWF: Mountain Water Futures
Publication Stage
Published
Additional Information
Mountain Water Futures , Refereed Publications
Download Links
https://doi.org/10.1016/j.rse.2021.112862
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