High-resolution maps of historical and 21st century ecological drought metrics using multivariate matching algorithms for drylands of western U.S. and Canada

These data were compiled using a new multivariate matching algorithm that transfers simulated soil moisture conditions (Bradford et al. 2020) from an original 10-km resolution to a 30-arcsec spatial resolution. Also, these data are a supplement to a previously published journal article (Bradford et al., 2020) and USGS data release (Bradford and Schlaepfer, 2020). The objectives of our study were to (1) characterize geographic patterns in ecological drought under historical climate, (2) quantify the direction and magnitude of projected responses in ecological drought under climate change, (3) identify areas and drought metrics with projected changes that are robust across climate models for a representative set of climate scenarios. These data represent geographic patterns in simulated ecological drought metrics based on SOILWAT2 simulations under climate conditions representing historical (current) time period (1980-2010) and two future projected time periods (2020-2050, d40yrs) and (2070-2100, d90yrs) for two representative concentration pathways (RCP4.5, RCP8.5) as medians across simulation runs based on output from each of the available downscaled global circulation models that participated in CMIP5 (RCP4.5, 37 GCMs; RCP8.5, 35 GCMs; Maurer et al. 2007). Additional information about the setup of SOILWAT2 simulation experiments can be found in Bradford et al. 2020. These data were created in 2020 and 2021 for the area of the sagebrush region in the western North America. These data were created by a collaborative research project between the U.S. Geological Survey and Yale University. These data can be used with the high-resolution matching algorithm (Renne et al., 202X), within the scope of Bradford et al. 2020, and as defined by the study. These data may also be used to evaluate the potential impact of changing climate conditions on robust ecological drought metrics within the scope defined by the study.

Data and Resources

Field Value
accessLevel public
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identifier USGS:61faf644d34e622189c7ba3e
metadata_type geospatial
modified 20220428
old-spatial -133.2167, 28.9083, -94.9333, 56.5750
publisher U.S. Geological Survey
publisher_hierarchy Department of the Interior > U.S. Geological Survey
resource-type Dataset
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spatial {"type": "Polygon", "coordinates": [[[-133.2167, 28.9083], [-133.2167, 56.5750], [ -94.9333, 56.5750], [ -94.9333, 28.9083], [-133.2167, 28.9083]]]}
theme {geospatial}
Groups
  • AmeriGEOSS
  • National Provider
  • North America
Tags
  • 30-arcsecond
  • alberta
  • amerigeo
  • amerigeoss
  • arizona
  • biota
  • british-columbia
  • california
  • canada
  • ckan
  • climate
  • climate-change
  • climate-projection
  • climatologymeteorologyatmosphere
  • cmip5
  • colorado
  • data-release
  • drought-metrics
  • droughts
  • drylands
  • ecological-drought
  • ecological-model
  • future-time-periods
  • geo
  • geoss
  • global-circulation-models
  • historical-conditions
  • idaho
  • iowa
  • kansas
  • manitoba
  • minnesota
  • montana
  • national
  • nebraska
  • nevada
  • new-mexico
  • north-america
  • north-dakota
  • oklahoma
  • oregon
  • rcp4-5
  • rcp8-5
  • representative-concentration-pathways
  • sagebrush-region
  • saskatchewan
  • soil-moisture
  • soil-temperature
  • soilwat2
  • texas
  • united-states
  • usgs-61faf644d34e622189c7ba3e
  • utah
  • washington
  • western-north-america
  • wyoming
isopen False
license_id notspecified
license_title License not specified
maintainer John B Bradford
maintainer_email jbradford@usgs.gov
metadata_created 2025-11-20T04:08:49.778379
metadata_modified 2025-11-20T04:08:49.778383
notes These data were compiled using a new multivariate matching algorithm that transfers simulated soil moisture conditions (Bradford et al. 2020) from an original 10-km resolution to a 30-arcsec spatial resolution. Also, these data are a supplement to a previously published journal article (Bradford et al., 2020) and USGS data release (Bradford and Schlaepfer, 2020). The objectives of our study were to (1) characterize geographic patterns in ecological drought under historical climate, (2) quantify the direction and magnitude of projected responses in ecological drought under climate change, (3) identify areas and drought metrics with projected changes that are robust across climate models for a representative set of climate scenarios. These data represent geographic patterns in simulated ecological drought metrics based on SOILWAT2 simulations under climate conditions representing historical (current) time period (1980-2010) and two future projected time periods (2020-2050, d40yrs) and (2070-2100, d90yrs) for two representative concentration pathways (RCP4.5, RCP8.5) as medians across simulation runs based on output from each of the available downscaled global circulation models that participated in CMIP5 (RCP4.5, 37 GCMs; RCP8.5, 35 GCMs; Maurer et al. 2007). Additional information about the setup of SOILWAT2 simulation experiments can be found in Bradford et al. 2020. These data were created in 2020 and 2021 for the area of the sagebrush region in the western North America. These data were created by a collaborative research project between the U.S. Geological Survey and Yale University. These data can be used with the high-resolution matching algorithm (Renne et al., 202X), within the scope of Bradford et al. 2020, and as defined by the study. These data may also be used to evaluate the potential impact of changing climate conditions on robust ecological drought metrics within the scope defined by the study.
num_resources 2
num_tags 56
title High-resolution maps of historical and 21st century ecological drought metrics using multivariate matching algorithms for drylands of western U.S. and Canada