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Title: The Potential of Hydrogeodesy to Address Water-Related and Sustainability Challenges

Journal Article · · Water Resources Research
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  1. Stockholm Univ. (Sweden)
  2. Commonwealth Scientific and Industrial Research Organisation (CSIRO), Urrbrae, SA (Australia)
  3. Mamirauá Institute for Sustainable Development (Brazil)
  4. Pacific Northwest National Laboratory (PNNL), Richland, WA (United States)
  5. Lund Univ. (Sweden)
  6. Univ. of Montana, Missoula, MT (United States)
  7. Univ. of Toulouse (France); Centre National de la Recherche Scientifique (CNRS) (France); University of Brasília (Brazil)
  8. Helmholtz-Zentrum Potsdam (HZP), (Germany). German Research Centre for GeoSciences
  9. National Research Council (CNR), Perugia (Italy)
  10. Aalto Univ., Otaniemi (Finland); Univ. of Eastern Finland (Finland)
  11. Stockholm Univ. (Sweden); Potsdam Institute for Climate Impact Research, Potsdam (Germany)
  12. Univ. of Concepción (Chile)
  13. Univ. of California, San Diego, CA (United States)
  14. Stockholm Univ. (Sweden); KTH Royal Inst. of Technology, Stockholm (Sweden); Stellenbosch Institute for Advanced Study (South Africa)
  15. Uppsala Univ. (Sweden)
  16. Stockholm Univ. (Sweden); Univ. of Victoria, BC (Australia)
  17. IU Digital de Antioquia (Colombia)
  18. Florida International Univ. (FIU), Miami, FL (United States)
  19. Virginia Polytechnic Inst. and State Univ. (Virginia Tech), Blacksburg, VA (United States)
  20. California Institute of Technology (CalTech), Pasadena, CA (United States). Jet Propulsion Lab. (JPL)
  21. Univ. of Stuttgart (Germany)
  22. Univ. of Bonn (Germany)
  23. International Search Partners Association (ISPA) (France); French National Research Institute for Agriculture, Food and Environment (INRAE) (France)
  24. Univ. of Victoria, BC (Canada)
  25. KTH Royal Inst. of Technology, Stockholm (Sweden)
  26. Univ. of Toulouse (France); Centre National de la Recherche Scientifique (CNRS) (France)
  27. Florida International Univ. (FIU), Miami, FL (United States); Stockholm Environment Institute Latin America (Colombia)
  28. Universidad del Rosario, Bogotá (Colombia); Jardín Botánico de Bogotá (Colombia)
  29. Laval Univ., QC (Canada)
  30. Chinese Academy of Sciences, Nanjing (China); University of Chinese Academy of Sciences (China)
  31. National Academy of Sciences (Canada); National Academy of Engineering (Canada)
  32. King Abdullah University of Science and Technology (KAUST), Thuwal (Saudi Arabia)
  33. University of North Carolina, Chapel Hill, NC (United States)
  34. Univ. of Illinois at Urbana-Champaign, IL (United States); Kansas State Univ., Manhattan, KS (United States)
  35. Univ. of Virginia, Charlottesville, VA (United States)
  36. Vrije Univ., Amsterdam (Netherlands)
  37. Arizona State Univ., Tempe, AZ (United States)
  38. University of Brasília (Brazil)
  39. Univ. of Michigan, Ann Arbor, MI (United States)
  40. Univ. of Toulouse (France)
  41. Aalto University, Espoo (Finland)
  42. Stockholm Univ. (Sweden); Higher University of San Simón (Bolivia)
  43. Univ. of Toulouse (France); Geological Survey of Brazil (Brazil)
  44. Technical Univ. of Denmark, Lyngby (Denmark). Geodesy and Earth Observation
  45. Polytechnic Univ. of Milan (Italy)
  46. Univ. of Antioquia (Colombia)

Increasing climatic and human pressures are changing the world's water resources and hydrological processes at unprecedented rates. Understanding these changes requires comprehensive monitoring of water resources. Hydrogeodesy, the science that measures the Earth's solid and aquatic surfaces, gravity field, and their changes over time, delivers a range of novel monitoring tools that are complementary to traditional hydrological methods. It encompasses geodetic technologies such as Altimetry, Interferometric Synthetic Aperture Radar (InSAR), Gravimetry, and Global Navigation Satellite Systems (GNSS). Beyond quantifying these changes, there is a need to understand how hydrogeodesy can contribute to more ambitious goals dealing with water-related and sustainability sciences. Addressing this need, we combine a meta-analysis of over 3,000 articles to chart the range, trends, and applications of satellite-based hydrogeodesy with an expert elicitation that systematically assesses the potential of hydrogeodesy. We find a growing body of literature relating to the advancements in hydrogeodetic methods, their accuracy and precision, and their inclusion in hydrological modeling, with a considerably smaller portion related to understanding hydrological processes, water management, and sustainability sciences. The meta-analysis also shows that while lakes, groundwater and glaciers are commonly monitored by these technologies, wetlands or permafrost could benefit from a wider range of applications. In turn, the expert elicitation envisages the potential of hydrogeodesy to help solve the 23 Unsolved Questions of the International Association of Hydrological Sciences and advance knowledge as guidance toward a safe operating space for humanity. It also highlights how this potential can be maximized by combining hydrogeodetic technologies simultaneously, exploiting artificial intelligence, and accurately integrating other Earth science disciplines. Finally, we call for a coordinated way forward to include hydrogeodesy in tertiary education and broaden its application to water-related and sustainability sciences in order to exploit its full potential.

Research Organization:
Pacific Northwest National Laboratory (PNNL), Richland, WA (United States)
Sponsoring Organization:
USDOE
Grant/Contract Number:
AC05-76RL01830
OSTI ID:
2539752
Report Number(s):
PNNL-SA--194875
Journal Information:
Water Resources Research, Journal Name: Water Resources Research Journal Issue: 11 Vol. 60; ISSN 0043-1397
Publisher:
American Geophysical Union (AGU)Copyright Statement
Country of Publication:
United States
Language:
English

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Emerging Properties in Self-Supervised Vision Transformers preprint January 2021

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