Item talk:Q141569
From geokb
{
"OpenAlex": { "id": "https://openalex.org/A5080247212", "orcid": "https://orcid.org/0000-0003-3840-3860", "display_name": "David Shean", "display_name_alternatives": [ "David E. Shean", "David Shean", "D. E. Shean", "D. Shean" ], "works_count": 225, "cited_by_count": 4382, "summary_stats": { "2yr_mean_citedness": 5.622222222222222, "h_index": 32, "i10_index": 46 }, "ids": { "openalex": "https://openalex.org/A5080247212", "orcid": "https://orcid.org/0000-0003-3840-3860", "scopus": "http://www.scopus.com/inward/authorDetails.url?authorID=8511222700&partnerID=MN8TOARS" }, "affiliations": [ { "institution": { "id": "https://openalex.org/I201448701", "ror": "https://ror.org/00cvxb145", "display_name": "University of Washington", "country_code": "US", "type": "education", "lineage": [ "https://openalex.org/I201448701" ] }, "years": [ 2024, 2023, 2022, 2021, 2020, 2019, 2018, 2017, 2016, 2015 ] }, { "institution": { "id": "https://openalex.org/I4210131007", "ror": "https://ror.org/02xe89706", "display_name": "John Wiley & Sons (United States)", "country_code": "US", "type": "company", "lineage": [ "https://openalex.org/I4210131007" ] }, "years": [ 2019 ] }, { "institution": { "id": "https://openalex.org/I58610484", "ror": "https://ror.org/02jqc0m91", "display_name": "Seattle University", "country_code": "US", "type": "education", "lineage": [ "https://openalex.org/I58610484" ] }, "years": [ 2019 ] }, { "institution": { "id": "https://openalex.org/I139347817", "ror": "https://ror.org/008g9p546", "display_name": "United States Postal Service", "country_code": "US", "type": "government", "lineage": [ "https://openalex.org/I139347817" ] }, "years": [ 2019 ] }, { "institution": { "id": "https://openalex.org/I2802946424", "ror": "https://ror.org/029pp9z10", "display_name": "Johns Hopkins University Applied Physics Laboratory", "country_code": "US", "type": "facility", "lineage": [ "https://openalex.org/I145311948", "https://openalex.org/I2802946424" ] }, "years": [ 2018, 2017, 2016, 2015, 2014 ] }, { "institution": { "id": "https://openalex.org/I4210156930", "ror": "https://ror.org/055mfda29", "display_name": "Earth and Space Research", "country_code": "US", "type": "nonprofit", "lineage": [ "https://openalex.org/I4210156930" ] }, "years": [ 2017, 2016, 2015, 2014 ] }, { "institution": { "id": "https://openalex.org/I4210138199", "ror": "https://ror.org/03d17d270", "display_name": "University of Washington Applied Physics Laboratory", "country_code": "US", "type": "facility", "lineage": [ "https://openalex.org/I201448701", "https://openalex.org/I4210138199" ] }, "years": [ 2017, 2015, 2014 ] }, { "institution": { "id": "https://openalex.org/I2800753661", "ror": "https://ror.org/00v5n6851", "display_name": "Malin Space Science Systems (United States)", "country_code": "US", "type": "company", "lineage": [ "https://openalex.org/I2800753661" ] }, "years": [ 2010, 2009 ] }, { "institution": { "id": "https://openalex.org/I111088046", "ror": "https://ror.org/05qwgg493", "display_name": "Boston University", "country_code": "US", "type": "education", "lineage": [ "https://openalex.org/I111088046" ] }, "years": [ 2010, 2007 ] }, { "institution": { "id": "https://openalex.org/I78577930", "ror": "https://ror.org/00hj8s172", "display_name": "Columbia University", "country_code": "US", "type": "education", "lineage": [ "https://openalex.org/I78577930" ] }, "years": [ 2007 ] } ], "last_known_institutions": [ { "id": "https://openalex.org/I201448701", "ror": "https://ror.org/00cvxb145", "display_name": "University of Washington", "country_code": "US", "type": "education", "lineage": [ "https://openalex.org/I201448701" ] } ], "topics": [ { "id": "https://openalex.org/T10644", "display_name": "Impacts of Climate Change on Glaciers and Water Availability", "count": 144, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11333", "display_name": "Arctic Permafrost Dynamics and Climate Change", "count": 63, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10535", "display_name": "Landslide Hazards and Risk Assessment", "count": 52, "subfield": { "id": "https://openalex.org/subfields/2308", "display_name": "Management, Monitoring, Policy and Law" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13176", "display_name": "Injuries in Alpine Skiing and Snowboarding", "count": 48, "subfield": { "id": "https://openalex.org/subfields/2740", "display_name": "Pulmonary and Respiratory Medicine" }, "field": { "id": "https://openalex.org/fields/27", "display_name": "Medicine" }, "domain": { "id": "https://openalex.org/domains/4", "display_name": "Health Sciences" } }, { "id": "https://openalex.org/T10017", "display_name": "Climate Change and Paleoclimatology", "count": 35, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11459", "display_name": "Arctic Sea Ice Variability and Decline", "count": 33, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10406", "display_name": "Exploration and Study of Mars", "count": 18, "subfield": { "id": "https://openalex.org/subfields/3103", "display_name": "Astronomy and Astrophysics" }, "field": { "id": "https://openalex.org/fields/31", "display_name": "Physics and Astronomy" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12983", "display_name": "Geometric Processing of Remote Sensing Imagery", "count": 15, "subfield": { "id": "https://openalex.org/subfields/2212", "display_name": "Ocean Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11164", "display_name": "Mapping Forests with Lidar Remote Sensing", "count": 12, "subfield": { "id": "https://openalex.org/subfields/2305", "display_name": "Environmental Engineering" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10330", "display_name": "Hydrological Modeling and Water Resource Management", "count": 11, "subfield": { "id": "https://openalex.org/subfields/2312", "display_name": "Water Science and Technology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12180", "display_name": "Microbial Diversity in Antarctic Ecosystems", "count": 10, "subfield": { "id": "https://openalex.org/subfields/2303", "display_name": "Ecology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T14214", "display_name": "Space Suit Design and Ergonomics for EVA", "count": 8, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10325", "display_name": "Formation and Evolution of the Solar System", "count": 8, "subfield": { "id": "https://openalex.org/subfields/3103", "display_name": "Astronomy and Astrophysics" }, "field": { "id": "https://openalex.org/fields/31", "display_name": "Physics and Astronomy" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10801", "display_name": "Synthetic Aperture Radar Interferometry", "count": 6, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11211", "display_name": "3D Geospatial Modelling Techniques", "count": 5, "subfield": { "id": "https://openalex.org/subfields/1907", "display_name": "Geology" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10965", "display_name": "Sedimentary Processes in Earth's Geology", "count": 5, "subfield": { "id": "https://openalex.org/subfields/1904", "display_name": "Earth-Surface Processes" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11588", "display_name": "Global Methane Emissions and Impacts", "count": 5, "subfield": { "id": "https://openalex.org/subfields/2306", "display_name": "Global and Planetary Change" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11405", "display_name": "Global Sea Level Variability and Change", "count": 5, "subfield": { "id": "https://openalex.org/subfields/1910", "display_name": "Oceanography" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10995", "display_name": "Anaerobic Methane Oxidation and Gas Hydrates", "count": 5, "subfield": { "id": "https://openalex.org/subfields/2304", "display_name": "Environmental Chemistry" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13060", "display_name": "Psychological and Sociocultural Aspects of Extreme Sports", "count": 4, "subfield": { "id": "https://openalex.org/subfields/3207", "display_name": "Social Psychology" }, "field": { "id": "https://openalex.org/fields/32", "display_name": "Psychology" }, "domain": { "id": "https://openalex.org/domains/2", "display_name": "Social Sciences" } }, { "id": "https://openalex.org/T10111", "display_name": "Remote Sensing in Vegetation Monitoring and Phenology", "count": 4, "subfield": { "id": "https://openalex.org/subfields/2303", "display_name": "Ecology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12788", "display_name": "Search for Extraterrestrial Life and Intelligence", "count": 3, "subfield": { "id": "https://openalex.org/subfields/3103", "display_name": "Astronomy and Astrophysics" }, "field": { "id": "https://openalex.org/fields/31", "display_name": "Physics and Astronomy" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T14339", "display_name": "Automated Reconstruction of Fragmented Objects", "count": 3, "subfield": { "id": "https://openalex.org/subfields/1707", "display_name": "Computer Vision and Pattern Recognition" }, "field": { "id": "https://openalex.org/fields/17", "display_name": "Computer Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10930", "display_name": "Global Flood Risk Assessment and Management", "count": 3, "subfield": { "id": "https://openalex.org/subfields/2306", "display_name": "Global and Planetary Change" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13067", "display_name": "Geological Modeling and Uncertainty Analysis", "count": 3, "subfield": { "id": "https://openalex.org/subfields/1906", "display_name": "Geochemistry and Petrology" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } } ], "topic_share": [ { "id": "https://openalex.org/T10644", "display_name": "Impacts of Climate Change on Glaciers and Water Availability", "value": 0.0005646, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13176", "display_name": "Injuries in Alpine Skiing and Snowboarding", "value": 0.0003813, "subfield": { "id": "https://openalex.org/subfields/2740", "display_name": "Pulmonary and Respiratory Medicine" }, "field": { "id": "https://openalex.org/fields/27", "display_name": "Medicine" }, "domain": { "id": "https://openalex.org/domains/4", "display_name": "Health Sciences" } }, { "id": "https://openalex.org/T11333", "display_name": "Arctic Permafrost Dynamics and Climate Change", "value": 0.0003736, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11459", "display_name": "Arctic Sea Ice Variability and Decline", "value": 0.0002279, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10535", "display_name": "Landslide Hazards and Risk Assessment", "value": 0.0001846, "subfield": { "id": "https://openalex.org/subfields/2308", "display_name": "Management, Monitoring, Policy and Law" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12180", "display_name": "Microbial Diversity in Antarctic Ecosystems", "value": 0.0001175, "subfield": { "id": "https://openalex.org/subfields/2303", "display_name": "Ecology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13060", "display_name": "Psychological and Sociocultural Aspects of Extreme Sports", "value": 8.99e-05, "subfield": { "id": "https://openalex.org/subfields/3207", "display_name": "Social Psychology" }, "field": { "id": "https://openalex.org/fields/32", "display_name": "Psychology" }, "domain": { "id": "https://openalex.org/domains/2", "display_name": "Social Sciences" } }, { "id": "https://openalex.org/T10801", "display_name": "Synthetic Aperture Radar Interferometry", "value": 8.64e-05, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11164", "display_name": "Mapping Forests with Lidar Remote Sensing", "value": 6.61e-05, "subfield": { "id": "https://openalex.org/subfields/2305", "display_name": "Environmental Engineering" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T14214", "display_name": "Space Suit Design and Ergonomics for EVA", "value": 6.02e-05, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10017", "display_name": "Climate Change and Paleoclimatology", "value": 5.39e-05, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10406", "display_name": "Exploration and Study of Mars", "value": 5.28e-05, "subfield": { "id": "https://openalex.org/subfields/3103", "display_name": "Astronomy and Astrophysics" }, "field": { "id": "https://openalex.org/fields/31", "display_name": "Physics and Astronomy" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13098", "display_name": "Motivation and Behavior of Convention Attendees", "value": 4.53e-05, "subfield": { "id": "https://openalex.org/subfields/3312", "display_name": "Sociology and Political Science" }, "field": { "id": "https://openalex.org/fields/33", "display_name": "Social Sciences" }, "domain": { "id": "https://openalex.org/domains/2", "display_name": "Social Sciences" } }, { "id": "https://openalex.org/T12644", "display_name": "Ecological Effects of Roads on Wildlife and Habitat Connectivity", "value": 3.75e-05, "subfield": { "id": "https://openalex.org/subfields/2303", "display_name": "Ecology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12719", "display_name": "Airborne Wind Energy Systems and High-Altitude Platforms", "value": 3.69e-05, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10330", "display_name": "Hydrological Modeling and Water Resource Management", "value": 3.41e-05, "subfield": { "id": "https://openalex.org/subfields/2312", "display_name": "Water Science and Technology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10111", "display_name": "Remote Sensing in Vegetation Monitoring and Phenology", "value": 2.8e-05, "subfield": { "id": "https://openalex.org/subfields/2303", "display_name": "Ecology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12443", "display_name": "The Delphi Method in Research and Consensus Building", "value": 2.44e-05, "subfield": { "id": "https://openalex.org/subfields/3312", "display_name": "Sociology and Political Science" }, "field": { "id": "https://openalex.org/fields/33", "display_name": "Social Sciences" }, "domain": { "id": "https://openalex.org/domains/2", "display_name": "Social Sciences" } }, { "id": "https://openalex.org/T12983", "display_name": "Geometric Processing of Remote Sensing Imagery", "value": 2.35e-05, "subfield": { "id": "https://openalex.org/subfields/2212", "display_name": "Ocean Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11211", "display_name": "3D Geospatial Modelling Techniques", "value": 2.23e-05, "subfield": { "id": "https://openalex.org/subfields/1907", "display_name": "Geology" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12696", "display_name": "Icing Mitigation Techniques for Wind Turbines and Aircraft", "value": 2.01e-05, "subfield": { "id": "https://openalex.org/subfields/2202", "display_name": "Aerospace Engineering" }, "field": { "id": "https://openalex.org/fields/22", "display_name": "Engineering" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10766", "display_name": "Urban Heat Islands and Mitigation Strategies", "value": "2e-05", "subfield": { "id": "https://openalex.org/subfields/2305", "display_name": "Environmental Engineering" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T12788", "display_name": "Search for Extraterrestrial Life and Intelligence", "value": 1.97e-05, "subfield": { "id": "https://openalex.org/subfields/3103", "display_name": "Astronomy and Astrophysics" }, "field": { "id": "https://openalex.org/fields/31", "display_name": "Physics and Astronomy" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T11312", "display_name": "Remote Sensing of Soil Moisture", "value": 1.95e-05, "subfield": { "id": "https://openalex.org/subfields/2305", "display_name": "Environmental Engineering" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10965", "display_name": "Sedimentary Processes in Earth's Geology", "value": 1.9e-05, "subfield": { "id": "https://openalex.org/subfields/1904", "display_name": "Earth-Surface Processes" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } } ], "x_concepts": [ { "id": "https://openalex.org/C127313418", "wikidata": "https://www.wikidata.org/wiki/Q1069", "display_name": "Geology", "level": 0, "score": 90.7 }, { "id": "https://openalex.org/C205649164", "wikidata": "https://www.wikidata.org/wiki/Q1071", "display_name": "Geography", "level": 0, "score": 87.1 }, { "id": "https://openalex.org/C121332964", "wikidata": "https://www.wikidata.org/wiki/Q413", "display_name": "Physics", "level": 0, "score": 80.4 }, { "id": "https://openalex.org/C86803240", "wikidata": "https://www.wikidata.org/wiki/Q420", "display_name": "Biology", "level": 0, "score": 71.1 }, { "id": "https://openalex.org/C114793014", "wikidata": "https://www.wikidata.org/wiki/Q52109", "display_name": "Geomorphology", "level": 1, "score": 68.9 }, { "id": "https://openalex.org/C127413603", "wikidata": "https://www.wikidata.org/wiki/Q11023", "display_name": "Engineering", "level": 0, "score": 52.9 }, { "id": "https://openalex.org/C151730666", "wikidata": "https://www.wikidata.org/wiki/Q7205", "display_name": "Paleontology", "level": 1, "score": 52.9 }, { "id": "https://openalex.org/C100970517", "wikidata": "https://www.wikidata.org/wiki/Q52107", "display_name": "Physical geography", "level": 1, "score": 48.9 }, { "id": "https://openalex.org/C153294291", "wikidata": "https://www.wikidata.org/wiki/Q25261", "display_name": "Meteorology", "level": 1, "score": 45.3 }, { "id": "https://openalex.org/C41008148", "wikidata": "https://www.wikidata.org/wiki/Q21198", "display_name": "Computer science", "level": 0, "score": 43.6 }, { "id": "https://openalex.org/C62649853", "wikidata": "https://www.wikidata.org/wiki/Q199687", "display_name": "Remote sensing", "level": 1, "score": 43.6 }, { "id": "https://openalex.org/C1276947", "wikidata": "https://www.wikidata.org/wiki/Q333", "display_name": "Astronomy", "level": 1, "score": 43.1 }, { "id": "https://openalex.org/C111368507", "wikidata": "https://www.wikidata.org/wiki/Q43518", "display_name": "Oceanography", "level": 1, "score": 43.1 }, { "id": "https://openalex.org/C100834320", "wikidata": "https://www.wikidata.org/wiki/Q35666", "display_name": "Glacier", "level": 2, "score": 40.4 }, { "id": "https://openalex.org/C18903297", "wikidata": "https://www.wikidata.org/wiki/Q7150", "display_name": "Ecology", "level": 1, "score": 35.6 }, { "id": "https://openalex.org/C58640448", "wikidata": "https://www.wikidata.org/wiki/Q42515", "display_name": "Cartography", "level": 1, "score": 30.2 }, { "id": "https://openalex.org/C33923547", "wikidata": "https://www.wikidata.org/wiki/Q395", "display_name": "Mathematics", "level": 0, "score": 28.4 }, { "id": "https://openalex.org/C62520636", "wikidata": "https://www.wikidata.org/wiki/Q944", "display_name": "Quantum mechanics", "level": 1, "score": 26.7 }, { "id": "https://openalex.org/C39432304", "wikidata": "https://www.wikidata.org/wiki/Q188847", "display_name": "Environmental science", "level": 0, "score": 26.2 }, { "id": "https://openalex.org/C49204034", "wikidata": "https://www.wikidata.org/wiki/Q52139", "display_name": "Climatology", "level": 1, "score": 24.9 }, { "id": "https://openalex.org/C154945302", "wikidata": "https://www.wikidata.org/wiki/Q11660", "display_name": "Artificial intelligence", "level": 1, "score": 24.0 }, { "id": "https://openalex.org/C31972630", "wikidata": "https://www.wikidata.org/wiki/Q844240", "display_name": "Computer vision", "level": 1, "score": 23.6 }, { "id": "https://openalex.org/C146978453", "wikidata": "https://www.wikidata.org/wiki/Q3798668", "display_name": "Aerospace engineering", "level": 1, "score": 23.6 }, { "id": "https://openalex.org/C71924100", "wikidata": "https://www.wikidata.org/wiki/Q11190", "display_name": "Medicine", "level": 0, "score": 23.1 }, { "id": "https://openalex.org/C197046000", "wikidata": "https://www.wikidata.org/wiki/Q7561", "display_name": "Snow", "level": 2, "score": 21.3 } ], "counts_by_year": [ { "year": 2024, "works_count": 4, "cited_by_count": 646 }, { "year": 2023, "works_count": 27, "cited_by_count": 1012 }, { "year": 2022, "works_count": 14, "cited_by_count": 1171 }, { "year": 2021, "works_count": 31, "cited_by_count": 888 }, { "year": 2020, "works_count": 25, "cited_by_count": 505 }, { "year": 2019, "works_count": 25, "cited_by_count": 540 }, { "year": 2018, "works_count": 17, "cited_by_count": 372 }, { "year": 2017, "works_count": 21, "cited_by_count": 296 }, { "year": 2016, "works_count": 9, "cited_by_count": 195 }, { "year": 2015, "works_count": 10, "cited_by_count": 195 }, { "year": 2014, "works_count": 4, "cited_by_count": 139 }, { "year": 2013, "works_count": 3, "cited_by_count": 55 }, { "year": 2012, "works_count": 3, "cited_by_count": 80 } ], "works_api_url": "https://api.openalex.org/works?filter=author.id:A5080247212", "updated_date": "2024-08-23T08:58:54.254631", "created_date": "2023-07-21", "_id": "https://openalex.org/A5080247212" }, "ORCID": { "@context": "http://schema.org", "@type": "Person", "@id": "https://orcid.org/0000-0003-3840-3860", "mainEntityOfPage": "https://orcid.org/0000-0003-3840-3860", "givenName": "David", "familyName": "Shean", "address": { "addressCountry": "US", "@type": "PostalAddress" }, "@reverse": { "creator": [ { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2023gl104871", "name": "Six Consecutive Seasons of High\u2010Resolution Mountain Snow Depth Maps From Satellite Stereo Imagery", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2023gl104871" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.22541/essoar.170365252.28053210/v1", "name": "GLAcier Feature Tracking testkit (GLAFT): a statistically and physically based framework built on top of open science workflows for evaluating glacier velocity maps", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.22541/essoar.170365252.28053210/v1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2023gl105303", "name": "Capturing the Onset of Mountain Snowmelt Runoff Using Satellite Synthetic Aperture Radar", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2023gl105303" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-17-4063-2023", "name": "GLAcier Feature Tracking testkit (GLAFT): a statistically and physically based framework for evaluating glacier velocity products derived from optical satellite image feature tracking", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-17-4063-2023" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-17-2779-2023", "name": "Evaluation of snow depth retrievals from ICESat-2 using airborne laser-scanning data", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-17-2779-2023" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.22541/essoar.168869172.27148310/v1", "name": "Snow depth from satellite laser altimetry (AGU 2021 presentation)", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.22541/essoar.168869172.27148310/v1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3390/rs15112791", "name": "Characterizing and Mapping Volcanic Flow Deposits on Mount St. Helens via Dual-Band SAR Imagery", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3390/rs15112791" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu23-7537", "name": "A new opportunity to measure snow depth from space: evaluation of retrievals from ICESat-2 using airborne laser-scanning data", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu23-7537" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu23-10088", "name": "Removing Atmospheric Noise from Interferograms in Mountainous Regions with a Deep Convolutional Neural Network", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu23-10088" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2023-38", "name": "GLAcier Feature Tracking testkit (GLAFT): A statistically- and physically-based framework for evaluating glacier velocity products derived from satellite image feature tracking", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2023-38" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1016/j.rse.2022.113379", "name": "Historical Structure from Motion (HSfM): Automated processing of historical aerial photographs for long-term topographic change analysis", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1016/j.rse.2022.113379" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.21105/joss.04982", "name": "SlideRule: Enabling rapid, scalable, open science for the NASA ICESat-2 mission and beyond", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.21105/joss.04982" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.22541/essoar.167214466.68854300/v1", "name": "Satellite Stereo Snow Depth Retrievals over Complex Terrain", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.22541/essoar.167214466.68854300/v1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/nhess-22-3309-2022", "name": "Pre-collapse motion of the February\u00a02021 Chamoli rock\u2013ice avalanche, Indian Himalaya", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/nhess-22-3309-2022" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2022-191", "name": "Evaluation of snow depth retrievals from ICESat-2 using airborne laser-scanning data", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2022-191" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2022-191-supplement", "name": "Supplementary material to \"Evaluation of snow depth retrievals from ICESat-2 using airborne laser-scanning data\"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2022-191-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3390/rs14174227", "name": "Improving Mountain Snow and Land Cover Mapping Using Very-High-Resolution (VHR) Optical Satellite Images and Random Forest Machine Learning Models", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3390/rs14174227" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3390/rs14143409", "name": "High-Resolution Snow-Covered Area Mapping in Forested Mountain Ecosystems Using PlanetScope Imagery", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3390/rs14143409" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu22-10190", "name": "Historical Structure From Motion (HSfM): An automated historical aerial photography processing pipeline revealing non-linear and heterogeneous glacier change across Western North America", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu22-10190" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/esp.5274", "name": "Spatial and temporal controls on proglacial erosion rates: A comparison of four basins on Mount Rainier, 1960 to 2017", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/esp.5274" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10509575.1", "name": "70 years of high-resolution glacier surface elevation records derived from historical aerial photography across Western North America", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10509575.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10509355.1", "name": "Gftt: an open-source tool for evaluating remotely sensed glacier velocity products", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10509355.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/nhess-2021-333", "name": "Pre-collapse motion of the February 2021 Chamoli rock-ice avalanche, Indian Himalaya", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/nhess-2021-333" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/nhess-2021-333-supplement", "name": "Supplementary material to "Pre-collapse motion of the February 2021 Chamoli rock-ice avalanche, Indian Himalaya"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/nhess-2021-333-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3390/rs13163134", "name": "Automated Dynamic Mascon Generation for GRACE and GRACE-FO Harmonic Processing", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3390/rs13163134" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1126/science.abh4455", "name": "A massive rock and ice avalanche caused the 2021 disaster at Chamoli, Indian Himalaya", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1126/science.abh4455" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/hess-2021-281", "name": "Mapping snow depth and volume at the alpine watershed scale from aerial imagery using Structure from Motion", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/hess-2021-281" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu21-13196", "name": "Historical Structure From Motion (HSfM): Automated production of high-resolution DEMs from historical aerial photography for long-term geodetic change analysis", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu21-13196" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu21-16597", "name": "Resolving pre-collapse slope motion at the February 2021 Chamoli rock-ice avalanche via feature tracking of optical satellite imagery", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu21-16597" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2021-34", "name": "Mapping snow depth and volume at the alpine watershed scale from aerial imagery using Structure from Motion", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2021-34" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2021-34-supplement", "name": "Supplementary material to "Mapping snow depth and volume at the alpine watershed scale from aerial imagery using Structure from Motion"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2021-34-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-14-2925-2020", "name": "Snow depth mapping from stereo satellite imagery in mountainous terrain: evaluation using airborne laser-scanning data", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-14-2925-2020" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2020-93-rc1", "name": "Review of \u201cIntercomparison of photogrammetric platforms for spatially continuous snow depth mapping\u201d by Eberhardt et al.", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2020-93-rc1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10503807.1", "name": "Dependence of Pine Island Glacier Ice Shelf Basal Melt Rates on Subgrid-Scale Parameterizations of Mixing", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10503807.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1017/jog.2019.91", "name": "Quantifying parameter uncertainty in a large-scale glacier evolution model using Bayesian inference: application to High Mountain Asia", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1017/jog.2019.91" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/egusphere-egu2020-9153", "name": "Multidecadal elevation changes from spy satellite images: application to glaciers and landslides", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/egusphere-egu2020-9153" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10502169.1", "name": "Automated tools to derive short-term glacier velocity from high-resolution commercial satellite imagery", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10502169.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2020-15", "name": "Snow depth mapping from stereo satellite imagery in mountainous terrain: evaluation using airborne lidar data", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2020-15" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10501805.1", "name": "Automated production of high-resolution DEMs from historical imagery for quantitative analysis of glacier and geomorphological change", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10501805.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-14-211-2020", "name": "A decade of variability on Jakobshavn Isbr\u00e6: ocean temperatures pace speed through influence on m\u00e9lange rigidity", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-14-211-2020" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/essoar.10501632.1", "name": "Machine Learning Classification and Derived Snow Metrics from Very-high-resolution Multispectral Satellite Imagery in Complex Terrain", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/essoar.10501632.1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2019wr024907", "name": "Spatially Extensive Ground\u2010Penetrating Radar Snow Depth Observations During NASA's 2017 SnowEx Campaign: Comparison With In Situ, Airborne, and Satellite Observations", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2019wr024907" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-13-2633-2019", "name": "Ice shelf basal melt rates from a high-resolution digital elevation model (DEM) record for Pine Island Glacier, Antarctica", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-13-2633-2019" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2019-197", "name": "A Decade of Variability on Jakobshavn Isbrae: Ocean Temperatures Pace Speed Through Influence on M\u00e9lange Rigidity", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2019-197" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2019-197-supplement", "name": "Supplementary material to "A Decade of Variability on Jakobshavn Isbrae: Ocean Temperatures Pace Speed Through Influence on M\u00e9lange Rigidity"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2019-197-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2018-209-ac1", "name": "Response to reviewers", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2018-209-ac1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2018gl080942", "name": "Heterogeneous Changes in Western North American Glaciers Linked to Decadal Variability in Zonal Wind Strength", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2018gl080942" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2018-209", "name": "Ice shelf basal melt rates from a high-resolution DEM record for Pine Island Glacier, Antarctica", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2018-209" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2018-209-supplement", "name": "Supplementary material to "Ice shelf basal melt rates from a high-resolution DEM record for Pine Island Glacier, Antarctica"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2018-209-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3390/rs10050798", "name": "Evolution and Controls of Large Glacial Lakes in the Nepal Himalaya", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3390/rs10050798" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85047532687" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2017-248", "name": "Elevated melt causes varied response of Crosson and Dotson Ice Shelves in West Antarctica", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2017-248" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2017-248-supplement", "name": "Supplementary material to "Elevated melt causes varied response of Crosson and Dotson Ice Shelves in West Antarctica"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2017-248-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-12-1415-2018", "name": "Changes in flow of Crosson and Dotson ice shelves, West Antarctica, in response to elevated melt", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-12-1415-2018" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85045673790" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2017jf004395", "name": "Quantifying Debris Thickness of Debris-Covered Glaciers in the Everest Region of Nepal Through Inversion of a Subdebris Melt Model", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85047635809" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2017jf004395" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2016-288-ac1", "name": "Response to reviewers", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2016-288-ac1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2016-288-ac2", "name": "Revised manuscript", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2016-288-ac2" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2016-288-ac3", "name": "Revised manuscript changes", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2016-288-ac3" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2017-41-rc1", "name": "Berger et al. review", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2017-41-rc1" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2016-241-rc2", "name": "Review", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2016-241-rc2" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-2016-288", "name": "<i>In-situ</i> GPS records of surface mass balance and ocean-induced basal melt for Pine Island Glacier, Antarctica", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-2016-288" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1038/s41467-017-01597-y", "name": "Diverse landscapes beneath Pine Island Glacier influence ice flow", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85034638063" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1038/s41467-017-01597-y" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-11-2655-2017", "name": "GPS-derived estimates of surface mass balance and ocean-induced basal melt for Pine Island Glacier ice shelf, Antarctica", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-11-2655-2017" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85034954236" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1109/igarss.2017.8127583", "name": "Remote sensing of the cryosphere in high mountain ASIA", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85041801868" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1109/igarss.2017.8127583" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/2016jf004133", "name": "Seasonal and interannual variabilities in terminus position, glacier velocity, and surface elevation at Helheim and Kangerlussuaq Glaciers from 2008 to 2016", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/2016jf004133" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-85031089089" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1016/j.isprsjprs.2016.03.012", "name": "An automated, open-source pipeline for mass production of digital elevation models (DEMs) from very-high-resolution commercial stereo satellite imagery", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1016/j.isprsjprs.2016.03.012" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84961833553" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-10-15-2016", "name": "Estimating supraglacial lake depth in West Greenland using Landsat 8 and comparison with other multispectral methods", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-10-15-2016" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84962127967" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/2016gl070259", "name": "Grounding line variability and subglacial lake drainage on Pine Island Glacier, Antarctica", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/2016gl070259" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84987981823" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1002/2016gl070500", "name": "Sensitivity of Pine Island Glacier to observed ocean forcing", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84995618138" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1002/2016gl070500" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tcd-9-3257-2015-supplement", "name": "Supplementary material to "Estimating supraglacial lake depth in western Greenland using Landsat 8 and comparison with other multispectral methods"", "identifier": { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tcd-9-3257-2015-supplement" } }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1038/nature14608", "name": "Erratum: Greenland supraglacial lake drainages triggered by hydrologically induced basal slip (Nature (2015) 522 (73-76) (DOI:10.1038/nature14480))", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84940911891" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1038/nature14608" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tcd-9-3257-2015", "name": "Estimating supraglacial lake depth in western Greenland using Landsat 8 and comparison with other multispectral methods", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84961791892" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tcd-9-3257-2015" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1038/nature14480", "name": "Greenland supraglacial lake drainages triggered by hydrologically induced basal slip", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84930614392" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1038/nature14480" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-9-2219-2015", "name": "Observations of seasonal and diurnal glacier velocities at Mount Rainier, Washington, using terrestrial radar interferometry", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84948983408" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-9-2219-2015" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.5194/tc-8-209-2014", "name": "Brief communication: Further summer speedup of jakobshavn isbr\u00e6", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.5194/tc-8-209-2014" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-84893308068" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2010gl045181", "name": "Candidate ice-rich material within equatorial craters on Mars", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2010gl045181" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-78650860363" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2010gl045074", "name": "Impact-induced overland fluid flow and channelized erosion at Lyot Crater, Mars", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-78149433696" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2010gl045074" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.3189/002214310791190901", "name": "Seismic and GPR surveys of Mullins Glacier, mcmurdo dry valleys, Antarctica: Ice thickness, internal structure and implications for surface ridge formation", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-77954120499" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.3189/002214310791190901" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1126/science.1175307", "name": "Distribution of mid-latitude ground ice on mars from new impact craters", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-70349545567" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1126/science.1175307" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2006je002761", "name": "Recent glaciation at high elevations on Arsia Mons, Mars: Implications for the formation and evolution of large tropical mountain glaciers", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-34249897482" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2006je002761" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1017/s0954102007000624", "name": "Shallow seismic surveys and ice thickness estimates of the Mullins Valley debris-covered glacier, McMurdo Dry Valleys, Antarctica", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-34249914309" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1017/s0954102007000624" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1109/mcg.2006.73", "name": "Adviser: Immersive field work for planetary geoscientists", "identifier": [ { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-33746056044" }, { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1109/mcg.2006.73" } ] }, { "@type": "CreativeWork", "@id": "https://doi.org/10.1029/2004je002360", "name": "Origin and evolution of a cold-based tropical mountain glacier on Mars: The Pavonis Mons fan-shaped deposit", "identifier": [ { "@type": "PropertyValue", "propertyID": "doi", "value": "10.1029/2004je002360" }, { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-21844441180" } ] }, { "@type": "CreativeWork", "name": "Assessment of intravenous fluid delivery systems for a microgravity environment", "identifier": { "@type": "PropertyValue", "propertyID": "eid", "value": "2-s2.0-34249079156" } } ] }, "url": "https://www.ce.washington.edu/facultyfinder/david-shean", "identifier": { "@type": "PropertyValue", "propertyID": "Scopus Author ID", "value": "8511222700" } }
}