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| Created: | Oct 14, 2025 at 6:57 p.m. (UTC) | |
| Last updated: | Aug 07, 2026 at 8:26 p.m. (UTC) | |
| Citation: | See how to cite this resource | |
| Content types: | CSV Content |
| Sharing Status: | Public |
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Abstract
We present a homogeneous and spatially explicit dataset at county and tract levels that supports climate change risk assessment across the contiguous United States, designed to enable user-defined construction of hazard, exposure, vulnerability, resilience, and composite risk indices through application-specific weighting of variables and selection of hazards or future hazard projections. The dataset follows the Intergovernmental Panel on Climate Change (IPCC) Sixth Assessment Report (AR6) risk framework, which defines risk through four key components: hazard, exposure, vulnerability, and resilience. It includes 130 variables compiled from multiple national sources for 3,198 counties and 83,481 tracts. Major data sources include the Baseline Resilience Indicators for Communities (BRIC) from the University of South Carolina, the National Risk Index (NRI) from the Federal Emergency Management Agency (FEMA), and the Social Vulnerability Index (SVI) from the Centers for Disease Control and Prevention (CDC). Additional datasets were integrated to provide a more comprehensive set of exposure variables. To facilitate integration of variables with different units and scales, all data were winsorized at the 5th and 95th percentiles and normalized using fuzzy membership functions. The resulting normalized values represent relative positions within the distribution of each indicator and provide a consistent numerical framework for visualization, spatial analysis, and user-defined risk modeling. This process reduces the influence of outliers while preserving data variability. The resulting dataset provides a consistent foundation for constructing composite risk indices, replicating or extending IPCC AR6-aligned analyses, and supporting climate risk and adaptation research. It is particularly suited for applications in systemic risk assessment, spatial modeling, and policy evaluation.
Subject Keywords
Coverage
Spatial
Content
README.txt
README – U.S. Climate Risk Dataset (IPCC AR6 Framework) This dataset provides a consistent and easy-to-use foundation for climate change and natural hazard risk assessments across the contiguous United States (CONUS). It is structured around the IPCC Sixth Assessment Report (AR6) understanding of risk, which considers four key components: Hazard, Exposure, Vulnerability, and Resilience. What’s Included: 130 variables, processed and ready for analysis, Available at both county (3,108) and census tract (83,481) levels, In CSV format. The dataset can support research and decision-making for 18 natural hazard types, including hurricanes, flooding, wildfire, drought, extreme heat, coastal hazards, severe storms, and others. 2. How the Data Is Organized: All variables are grouped into four categories that align directly with the IPCC AR6 risk components: Hazard: Measures related to the presence or likelihood of natural hazards Exposure: Populations, buildings, infrastructure, and land features that may be affected Vulnerability: Social and economic factors that influence how severely communities are impacted Resilience: Community capacity to prepare for, respond to, recover from, and adapt to hazards You can choose to work at either the county or tract scale depending on your project needs. A separate reference file (keyword.xlsx) is included, listing for each variable: Category, Variable Name, Description, Keyword, and Data Source 3. Data Sources: The dataset brings together information from several sources. The primary contributors include but not limited to: Baseline Resilience Indicators for Communities (BRIC) – University of South Carolina National Risk Index (NRI) – FEMA Social Vulnerability Index (SVI) – CDC Additional publicly available datasets were added to provide stronger coverage of exposure-related variables. 4. Data Processing: To make the variables comparable and ready for index construction, two key steps were applied: Winsorization at the 5th and 95th percentiles, to limit the influence of extreme outliers Fuzzy membership normalization, which converts all variables to a consistent 0–1 scale These steps preserve the variability in the data while making it easier to combine different variables in index development, spatial modeling, or statistical analyses. 5. Intended Use: The dataset is designed to be “plug-and-play” for climate and hazard risk assessments. Common applications include: Building composite climate risk indices Mapping multi-hazard risk in GIS Socio-environmental vulnerability and resilience research Supporting adaptation, planning, and policy studies Contact: Questions or feedback are welcome. Email egecankurter@gmail.com
Credits
Funding Agencies
This resource was created using funding from the following sources:
| Agency Name | Award Title | Award Number |
|---|---|---|
| National Science Foundation | None | 2152896 |
| NOAA via CIROH | None | NA22NWS4320003 |
| Office of Naval Research | None | N000142512404 |
How to Cite
This resource is shared under the Creative Commons Attribution CC BY.
http://creativecommons.org/licenses/by/4.0/
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