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Snow depth variability in the Northern Hemisphere mountains observed from space

机译:从太空观察到的北半球山脉的雪深度变异

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Accurate snow depth observations are critical to assess water resources. More than a billion people rely on water from snow, most of which originates in the Northern Hemisphere mountain ranges. Yet, remote sensing observations of mountain snow depth are still lacking at the large scale. Here, we show the ability of Sentinel-1 to map snow depth in the Northern Hemisphere mountains at 1?km2 resolution using an empirical change detection approach. An evaluation with measurements from ~4000 sites and reanalysis data demonstrates that the Sentinel-1 retrievals capture the spatial variability between and within mountain ranges, as well as their inter-annual differences. This is showcased with the contrasting snow depths between 2017 and 2018 in the US Sierra Nevada and European Alps. With Sentinel-1 continuity ensured until 2030 and likely beyond, these findings lay a foundation for quantifying the long-term vulnerability of mountain snow-water resources to climate change.
机译:准确的雪深度观察对于评估水资源至关重要。超过十亿人依赖来自雪的水,其中大部分来自北半球山脉。然而,山地雪深度的遥感观察仍然缺乏大规模缺乏。在这里,我们展示了Sentinel-1在北半球山区映射雪深的能力,使用经验变化检测方法在1姆2分辨率下映射北半球山脉。从〜4000个站点和再分析数据的测量值表明,Sentinel-1检索捕获山脉之间和内部的空间变异,以及它们的年度差异。这将展示2017年和2018年在美国塞拉尼亚达和欧洲阿尔卑斯山之间的雪深度对比雪深。随着Sentinel-1连续性确保到2030年,可能的可能性,这些发现奠定了量化山地雪水资源对气候变化的长期脆弱性的基础。

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