Estimating the Spatial Distribution of Snow Water Equivalent in the World's Mountains

Estimating the Spatial Distribution of Snow Water Equivalent in the World's Mountains
Title Estimating the Spatial Distribution of Snow Water Equivalent in the World's Mountains PDF eBook
Author Robert E. Davis
Publisher
Pages 14
Release 2016
Genre Mountains
ISBN

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Estimating the spatial distribution of snow water equivalent (SWE) in mountainous terrain is currently the most important unsolved problem in snow hydrology. Several methods can estimate the amount of snow throughout a mountain range: (1) Spatial interpolation from surface sensors constrained by remotely sensed snow extent provides a consistent answer, with uncertainty related to extrapolation to unrepresented locations. (2) The remotely sensed date of disappearance of snow is combined with a melt calculation to reconstruct the SWE back to the last significant snowfall. (3) Passive microwave sensors offer real‐time global SWE estimates but suffer from several problems like subpixel variability in the mountains. (4) A numerical model combined with assimilated surface observations produces SWE at 1‐km resolution at continental scales, but depends heavily on a surface network. (5) New methods continue to be explored, for example, airborne LiDAR altimetry provides direct measurements of snow depth, which are combined with modelled snow density to estimate SWE. While the problem is aggressively addressed, the right answer remains elusive. Good characterization of the snow is necessary to make informed choices about water resources and adaptation to climate change and variability. WIREs Water 2016, 3:461–474. doi: 10.1002/wat2.1140

Estimating the Spatial Distribution of Snow Water Equivalent and Snowmelt in Mountainous Watersheds of Semi-arid Regions (PHD).

Estimating the Spatial Distribution of Snow Water Equivalent and Snowmelt in Mountainous Watersheds of Semi-arid Regions (PHD).
Title Estimating the Spatial Distribution of Snow Water Equivalent and Snowmelt in Mountainous Watersheds of Semi-arid Regions (PHD). PDF eBook
Author Noah P. Molotch
Publisher
Pages 0
Release 2004
Genre
ISBN

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Estimating the Spatial and Temporal Distribution of Snow Water Equivalent Within a Watershed

Estimating the Spatial and Temporal Distribution of Snow Water Equivalent Within a Watershed
Title Estimating the Spatial and Temporal Distribution of Snow Water Equivalent Within a Watershed PDF eBook
Author Michael Charles Menoes
Publisher
Pages 990
Release 2003
Genre Snowmelt
ISBN

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Thriving on Our Changing Planet

Thriving on Our Changing Planet
Title Thriving on Our Changing Planet PDF eBook
Author National Academies of Sciences, Engineering, and Medicine
Publisher National Academies Press
Pages 717
Release 2019-01-20
Genre Science
ISBN 0309467578

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We live on a dynamic Earth shaped by both natural processes and the impacts of humans on their environment. It is in our collective interest to observe and understand our planet, and to predict future behavior to the extent possible, in order to effectively manage resources, successfully respond to threats from natural and human-induced environmental change, and capitalize on the opportunities â€" social, economic, security, and more â€" that such knowledge can bring. By continuously monitoring and exploring Earth, developing a deep understanding of its evolving behavior, and characterizing the processes that shape and reshape the environment in which we live, we not only advance knowledge and basic discovery about our planet, but we further develop the foundation upon which benefits to society are built. Thriving on Our Changing Planet presents prioritized science, applications, and observations, along with related strategic and programmatic guidance, to support the U.S. civil space Earth observation program over the coming decade.

Artificial Intelligence For Science: A Deep Learning Revolution

Artificial Intelligence For Science: A Deep Learning Revolution
Title Artificial Intelligence For Science: A Deep Learning Revolution PDF eBook
Author Alok Choudhary
Publisher World Scientific
Pages 803
Release 2023-03-21
Genre Computers
ISBN 9811265682

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This unique collection introduces AI, Machine Learning (ML), and deep neural network technologies leading to scientific discovery from the datasets generated both by supercomputer simulation and by modern experimental facilities.Huge quantities of experimental data come from many sources — telescopes, satellites, gene sequencers, accelerators, and electron microscopes, including international facilities such as the Large Hadron Collider (LHC) at CERN in Geneva and the ITER Tokamak in France. These sources generate many petabytes moving to exabytes of data per year. Extracting scientific insights from these data is a major challenge for scientists, for whom the latest AI developments will be essential.The timely handbook benefits professionals, researchers, academics, and students in all fields of science and engineering as well as AI, ML, and neural networks. Further, the vision evident in this book inspires all those who influence or are influenced by scientific progress.

Climatic and Associated Cryospheric and Hydrospheric Changes on the Third Pole

Climatic and Associated Cryospheric and Hydrospheric Changes on the Third Pole
Title Climatic and Associated Cryospheric and Hydrospheric Changes on the Third Pole PDF eBook
Author Lei Wang
Publisher Frontiers Media SA
Pages 112
Release 2021-03-10
Genre Science
ISBN 2889665828

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Estimating Snow Water Equivalent from Shallow-Snowpack Depth Measurements in the Great Salt Lake Desert Basin

Estimating Snow Water Equivalent from Shallow-Snowpack Depth Measurements in the Great Salt Lake Desert Basin
Title Estimating Snow Water Equivalent from Shallow-Snowpack Depth Measurements in the Great Salt Lake Desert Basin PDF eBook
Author Lance C. Kovel, P.E.
Publisher
Pages 72
Release 2013-11-23
Genre
ISBN

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An independent technical study evaluating the use of snowpack depth measurements to estimate snow water equivalent (SWE) of shallow and ephemeral snowpacks in the Great Salt Lake Desert Basin, located in Utah, Nevada, and Idaho. A parameterized bulk snow density model was combined with mean air temperature measurements to predict snow water equivalent in the Great Salt Lake Desert Basin using only snowpack depth measurements and prior 10-day average daily mean air temperatures. The model was developed using historic snowpack data obtained from a limited number of automated snowpack telemetry (SNOTEL) and weather stations within and near the Basin. Model results from lower-elevation, shallow and ephemeral snowpacks may be used to supplement data obtained from existing SNOTEL stations, sparsely located in the higher elevations of the Basin, to create a more-complete and accurate prediction of the Basin’s snow water equivalent, which may be used to better-manage the water demands of the Basin’s surrounding populations.