The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges

Abstract 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 aquat...

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Main Authors: Fernando Jaramillo, Saeid Aminjafari, Pascal Castellazzi, Ayan Fleischmann, Etienne Fluet‐Chouinard, Hossein Hashemi, Clara Hubinger, Hilary R. Martens, Fabrice Papa, Tilo Schöne, Angelica Tarpanelli, Vili Virkki, Lan Wang‐Erlandsson, Rodrigo Abarca‐del‐Rio, Adrian Borsa, Georgia Destouni, Giuliano Di Baldassarre, Michele‐Lee Moore, José Andrés Posada‐Marín, Shimon Wdowinski, Susanna Werth, George H. Allen, Donald Argus, Omid Elmi, Luciana Fenoglio, Frédéric Frappart, Xander Huggins, Zahra Kalantari, Simon Munier, Sebastián Palomino‐Ángel, Abigail Robinson, Kristian Rubiano, Gabriela Siles, Marc Simard, Chunqiao Song, Christopher Spence, Mohammad J. Tourian, Yoshihide Wada, Chao Wang, Jida Wang, Fangfang Yao, Wouter R. Berghuijs, Jean‐François Cretaux, James Famiglietti, Alice Fassoni‐Andrade, Jessica V. Fayne, Félix Girard, Matti Kummu, Kristine M. Larson, Martin Marañon, Daniel M. Moreira, Karina Nielsen, Tamlin Pavelsky, Francisco Pena, J. T. Reager, Maria Cristina Rulli, Juan F. Salazar
Format: Article
Language:English
Published: Wiley 2024-11-01
Series:Water Resources Research
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Online Access:https://doi.org/10.1029/2023WR037020
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author Fernando Jaramillo
Saeid Aminjafari
Pascal Castellazzi
Ayan Fleischmann
Etienne Fluet‐Chouinard
Hossein Hashemi
Clara Hubinger
Hilary R. Martens
Fabrice Papa
Tilo Schöne
Angelica Tarpanelli
Vili Virkki
Lan Wang‐Erlandsson
Rodrigo Abarca‐del‐Rio
Adrian Borsa
Georgia Destouni
Giuliano Di Baldassarre
Michele‐Lee Moore
José Andrés Posada‐Marín
Shimon Wdowinski
Susanna Werth
George H. Allen
Donald Argus
Omid Elmi
Luciana Fenoglio
Frédéric Frappart
Xander Huggins
Zahra Kalantari
Simon Munier
Sebastián Palomino‐Ángel
Abigail Robinson
Kristian Rubiano
Gabriela Siles
Marc Simard
Chunqiao Song
Christopher Spence
Mohammad J. Tourian
Yoshihide Wada
Chao Wang
Jida Wang
Fangfang Yao
Wouter R. Berghuijs
Jean‐François Cretaux
James Famiglietti
Alice Fassoni‐Andrade
Jessica V. Fayne
Félix Girard
Matti Kummu
Kristine M. Larson
Martin Marañon
Daniel M. Moreira
Karina Nielsen
Tamlin Pavelsky
Francisco Pena
J. T. Reager
Maria Cristina Rulli
Juan F. Salazar
author_facet Fernando Jaramillo
Saeid Aminjafari
Pascal Castellazzi
Ayan Fleischmann
Etienne Fluet‐Chouinard
Hossein Hashemi
Clara Hubinger
Hilary R. Martens
Fabrice Papa
Tilo Schöne
Angelica Tarpanelli
Vili Virkki
Lan Wang‐Erlandsson
Rodrigo Abarca‐del‐Rio
Adrian Borsa
Georgia Destouni
Giuliano Di Baldassarre
Michele‐Lee Moore
José Andrés Posada‐Marín
Shimon Wdowinski
Susanna Werth
George H. Allen
Donald Argus
Omid Elmi
Luciana Fenoglio
Frédéric Frappart
Xander Huggins
Zahra Kalantari
Simon Munier
Sebastián Palomino‐Ángel
Abigail Robinson
Kristian Rubiano
Gabriela Siles
Marc Simard
Chunqiao Song
Christopher Spence
Mohammad J. Tourian
Yoshihide Wada
Chao Wang
Jida Wang
Fangfang Yao
Wouter R. Berghuijs
Jean‐François Cretaux
James Famiglietti
Alice Fassoni‐Andrade
Jessica V. Fayne
Félix Girard
Matti Kummu
Kristine M. Larson
Martin Marañon
Daniel M. Moreira
Karina Nielsen
Tamlin Pavelsky
Francisco Pena
J. T. Reager
Maria Cristina Rulli
Juan F. Salazar
author_sort Fernando Jaramillo
collection DOAJ
description Abstract 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.
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spelling doaj-art-5a1501998f9a418487bae167f980e8642025-08-23T13:05:51ZengWileyWater Resources Research0043-13971944-79732024-11-016011n/an/a10.1029/2023WR037020The Potential of Hydrogeodesy to Address Water‐Related and Sustainability ChallengesFernando Jaramillo0Saeid Aminjafari1Pascal Castellazzi2Ayan Fleischmann3Etienne Fluet‐Chouinard4Hossein Hashemi5Clara Hubinger6Hilary R. Martens7Fabrice Papa8Tilo Schöne9Angelica Tarpanelli10Vili Virkki11Lan Wang‐Erlandsson12Rodrigo Abarca‐del‐Rio13Adrian Borsa14Georgia Destouni15Giuliano Di Baldassarre16Michele‐Lee Moore17José Andrés Posada‐Marín18Shimon Wdowinski19Susanna Werth20George H. Allen21Donald Argus22Omid Elmi23Luciana Fenoglio24Frédéric Frappart25Xander Huggins26Zahra Kalantari27Simon Munier28Sebastián Palomino‐Ángel29Abigail Robinson30Kristian Rubiano31Gabriela Siles32Marc Simard33Chunqiao Song34Christopher Spence35Mohammad J. Tourian36Yoshihide Wada37Chao Wang38Jida Wang39Fangfang Yao40Wouter R. Berghuijs41Jean‐François Cretaux42James Famiglietti43Alice Fassoni‐Andrade44Jessica V. Fayne45Félix Girard46Matti Kummu47Kristine M. Larson48Martin Marañon49Daniel M. Moreira50Karina Nielsen51Tamlin Pavelsky52Francisco Pena53J. T. Reager54Maria Cristina Rulli55Juan F. Salazar56Department of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenDepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenCommonwealth Scientific and Industrial Research Organisation (CSIRO), Environment Urrbrae SA AustraliaMamirauá Institute for Sustainable Development Tefé BrazilEarth Systems Science Division Pacific Northwest National Laboratory Richland WA USADepartment of Water Resources Engineering Lund University Lund SwedenDepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenDepartment of Geosciences The University of Montana Missoula MT USAUniversité de Toulouse, LEGOS (CNES/CNRS/IRD/UT3) Toulouse FranceDepartment Geodesy Helmholtz‐Centre GFZ German Research Centre for Geoscience Potsdam GermanyResearch Institute for the Geo‐hydrological Protection, National Research Council Perugia ItalyWater and Development Research Group, Aalto University Espoo FinlandStockholm Resilience Centre, Stockholm University Stockholm SwedenDepartamento de Geofisica Universidad de Concepción Concepción ChileScripps Institution of Oceanography, University of California San Diego San Diego CA USADepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenDepartment of Earth Sciences Uppsala University Uppsala SwedenStockholm Resilience Centre, Stockholm University Stockholm SwedenGrupo de Investigación INDEES, IU Digital de Antioquia Bogota ColombiaInstitute of Environment, Department of Earth and Environment Florida International University Miami FL USADepartment of Geosciences Virginia Polytechnic Institute and State University Blacksburg VA USADepartment of Geosciences Virginia Polytechnic Institute and State University Blacksburg VA USAJet Propulsion Laboratory California Institute of Technology Pasadena CA USAInstitute of Geodesy, University of Stuttgart Stuttgart GermanyInstitute of Geodesy and Geoinformation, University of Bonn Bonn GermanyISPA, Institut National de Recherche pour l'Agriculture, l'Alimentation et l'Environnement (INRAE) Villenave d'Ornon FranceDepartment of Civil Engineering University of Victoria Victoria BC CanadaDepartment of Sustainable Development Environmental Science and Engineering KTH Royal Institute of Technology Stockholm SwedenCNRM, Université de Toulouse, Météo‐France, CNRS Toulouse FranceInstitute of Environment, Department of Earth and Environment Florida International University Miami FL USADepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenDepartment of Biology, Faculty of Natural Sciences Universidad del Rosario Bogotá ColombiaDépartement des sciences géomatiques Université Laval Québec QC CanadaRadar Science and Engineering Section, Jet Propulsion Laboratory California Institute of Technology Pasadena CA USAKey Laboratory of Lake and Watershed Science for Water Security Nanjing Institute of Geography and Limnology, Chinese Academy of Sciences Nanjing ChinaEnvironment and Climate Change Canada, Water Science and Technology Directorate Saskatoon SK CanadaInstitute of Geodesy, University of Stuttgart Stuttgart GermanyBiological and Environmental Science and Engineering Division King Abdullah University of Science and Technology Thuwal Saudi ArabiaDepartment of Earth, Marine and Environmental Sciences University of North Carolina at Chapel Hill Chapel Hill NC USADepartment of Geography and Geographic Information Science University of Illinois Urbana‐Champaign Urbana IL USAEnvironmental Institute, University of Virginia Charlottesville VA USADepartment of Earth Sciences Free University Amsterdam Amsterdam The NetherlandsUniversité de Toulouse, LEGOS (CNES/CNRS/IRD/UT3) Toulouse FranceSchool of Sustainability Arizona State University Tempe AZ USAInstitute of Geosciences, University of Brasília Brasilia BrazilDepartment of Earth and Environmental Sciences University of Michigan Ann Arbor MI USAGéosciences Environnement Toulouse, Université de Toulouse Toulouse FranceWater and Development Research Group, Aalto University Espoo FinlandDETECT, Universität Bonn Bonn GermanyDepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenGéosciences Environnement Toulouse, Université de Toulouse Toulouse FranceDepartment of Space Research and Technology Geodesy and Earth Observation Geodesy DenmarkDepartment of Earth, Marine and Environmental Sciences University of North Carolina at Chapel Hill Chapel Hill NC USADepartment of Physical Geography and Bolin Centre for Climate Research Stockholm University Stockholm SwedenJet Propulsion Laboratory California Institute of Technology Pasadena CA USADepartment of Civil and Environmental Engineering Politecnico di Milano Milan ItalyGIGA, Escuela Ambiental, Facultad de Ingeniería, Universidad de Antioquia Medellín ColombiaAbstract 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.https://doi.org/10.1029/2023WR037020hydrogeodesyplanetary boundariesInSARGNSSaltimetrygravimetry
spellingShingle Fernando Jaramillo
Saeid Aminjafari
Pascal Castellazzi
Ayan Fleischmann
Etienne Fluet‐Chouinard
Hossein Hashemi
Clara Hubinger
Hilary R. Martens
Fabrice Papa
Tilo Schöne
Angelica Tarpanelli
Vili Virkki
Lan Wang‐Erlandsson
Rodrigo Abarca‐del‐Rio
Adrian Borsa
Georgia Destouni
Giuliano Di Baldassarre
Michele‐Lee Moore
José Andrés Posada‐Marín
Shimon Wdowinski
Susanna Werth
George H. Allen
Donald Argus
Omid Elmi
Luciana Fenoglio
Frédéric Frappart
Xander Huggins
Zahra Kalantari
Simon Munier
Sebastián Palomino‐Ángel
Abigail Robinson
Kristian Rubiano
Gabriela Siles
Marc Simard
Chunqiao Song
Christopher Spence
Mohammad J. Tourian
Yoshihide Wada
Chao Wang
Jida Wang
Fangfang Yao
Wouter R. Berghuijs
Jean‐François Cretaux
James Famiglietti
Alice Fassoni‐Andrade
Jessica V. Fayne
Félix Girard
Matti Kummu
Kristine M. Larson
Martin Marañon
Daniel M. Moreira
Karina Nielsen
Tamlin Pavelsky
Francisco Pena
J. T. Reager
Maria Cristina Rulli
Juan F. Salazar
The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
Water Resources Research
hydrogeodesy
planetary boundaries
InSAR
GNSS
altimetry
gravimetry
title The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
title_full The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
title_fullStr The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
title_full_unstemmed The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
title_short The Potential of Hydrogeodesy to Address Water‐Related and Sustainability Challenges
title_sort potential of hydrogeodesy to address water related and sustainability challenges
topic hydrogeodesy
planetary boundaries
InSAR
GNSS
altimetry
gravimetry
url https://doi.org/10.1029/2023WR037020
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