100+ datasets found
  1. G

    GPWv411: Population Density (Gridded Population of the World Version 4.11)

    • developers.google.com
    Updated Aug 11, 2019
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    NASA SEDAC at the Center for International Earth Science Information Network (2019). GPWv411: Population Density (Gridded Population of the World Version 4.11) [Dataset]. http://doi.org/10.7927/H49C6VHW
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    Dataset updated
    Aug 11, 2019
    Dataset provided by
    NASA SEDAC at the Center for International Earth Science Information Network
    Time period covered
    Jan 1, 2000 - Jan 1, 2020
    Area covered
    Earth
    Description

    This dataset contains estimates of the number of persons per square kilometer consistent with national censuses and population registers. There is one image for each modeled year. General Documentation The Gridded Population of World Version 4 (GPWv4), Revision 11 models the distribution of global human population for the years 2000, 2005, 2010, 2015, and 2020 on 30 arc-second (approximately 1 km) grid cells. Population is distributed to cells using proportional allocation of population from census and administrative units. Population input data are collected at the most detailed spatial resolution available from the results of the 2010 round of censuses, which occurred between 2005 and 2014. The input data are extrapolated to produce population estimates for each modeled year.

  2. a

    Population Density Estimate

    • ethiopia.africageoportal.com
    • africageoportal.com
    Updated May 19, 2020
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    Africa GeoPortal (2020). Population Density Estimate [Dataset]. https://ethiopia.africageoportal.com/maps/1a1d74ea676844c8ab6d80aa05f58212
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    Dataset updated
    May 19, 2020
    Dataset authored and provided by
    Africa GeoPortal
    Area covered
    Description

    From the AfriPop website..."High resolution, contemporary data on human population distributions are a prerequisite for the accurate measurement of the impacts of population growth, for monitoring changes and for planning interventions. The AfriPop project was initiated in July 2009 with an aim of producing detailed and freely-available population distribution maps for the whole of Africa. Based on the approaches outlined in detail here and here, and summarized on the methods page, fine resolution satellite imagery-derived settlement maps are combined with land cover maps to reallocate contemporary census-based spatial population count data. Assessments have shown that the resultant maps are more accurate than existing population map products, as well as the simple gridding of census data. Moreover, the 100m spatial resolution represents a finer mapping detail than has ever before been produced at national extents. The approaches used in AfriPop dataset production are designed with operational application in mind, using simple and semi-automated methods to produce easily updatable maps. Given the speed with which population growth and urbanisation are occurring across much of Africa, and the impacts these are having on the economies, environments and health of nations, such features are a necessity for both research and operational applications."Data Source: AfriPop.org

  3. f

    Human Population Density (Global - Annual - 1 km)

    • data.apps.fao.org
    Updated Sep 7, 2020
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    (2020). Human Population Density (Global - Annual - 1 km) [Dataset]. https://data.apps.fao.org/map/catalog/srv/search?keyword=WorldPop
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    Dataset updated
    Sep 7, 2020
    Description

    Estimated density of people per grid-cell, approximately 1km (0.008333 degrees) resolution. The units are number of people per Km² per pixel, expressed as unit: "ppl/Km²". The mapping approach is Random Forest-based dasymetric redistribution. The WorldPop project was initiated in October 2013 to combine the AfriPop, AsiaPop and AmeriPop population mapping projects. It aims to provide an open access archive of spatial demographic datasets for Central and South America, Africa and Asia to support development, disaster response and health applications. The methods used are designed with full open access and operational application in mind, using transparent, fully documented and peer-reviewed methods to produce easily updatable maps with accompanying metadata and measures of uncertainty. Acknowledgements information at https://www.worldpop.org/acknowledgements

  4. Population Density by County 2020

    • noaa.hub.arcgis.com
    Updated Sep 12, 2024
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    NOAA GeoPlatform (2024). Population Density by County 2020 [Dataset]. https://noaa.hub.arcgis.com/maps/04c3d53bf58c4ecba1327ff6d2b39b98
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    Dataset updated
    Sep 12, 2024
    Dataset provided by
    National Oceanic and Atmospheric Administrationhttp://www.noaa.gov/
    Authors
    NOAA GeoPlatform
    Area covered
    Description

    This layer presents population density data by county for states bordering the U.S. Gulf, sourced from the U.S. Census Bureau’s 2020 Census Demographic and Housing Characteristics. Population density is displayed as the number of people per square kilometer. Broadly speaking, population density indicates how many people would inhabit one square kilometer if the population were evenly distributed across the area. However, population distribution is uneven. People tend to cluster in urban areas, while those in rural regions are spread out over a much more sparsely populated landscape. Population density is a crucial metric for understanding and managing human population dynamics and their effects on society and the environment. It helps assess various environmental challenges, including urban sprawl, pollution, habitat loss, and resource depletion. Coastal areas frequently experience high population density due to urbanization, influencing land use, housing, and infrastructure development. This density can also stimulate tourism and recreation, necessitating careful planning for facilities, transportation, and environmental protection. Additionally, coastal regions are more susceptible to natural disasters such as hurricanes and flooding, making population density data essential for developing effective evacuation plans and emergency services. Data: U.S. Census BureauDocumentation: U.S. Census Bureau This is a component of the Gulf Data Atlas (V2.0) for the Socioeconomic Conditions topic area.

  5. f

    Let a threshold, τ, define a categorization of population density.

    • plos.figshare.com
    xls
    Updated Jun 9, 2023
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    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert (2023). Let a threshold, τ, define a categorization of population density. [Dataset]. http://doi.org/10.1371/journal.pone.0248646.t002
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    xlsAvailable download formats
    Dataset updated
    Jun 9, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Description

    In a gold standard map, G, a pixel is in the category if it is above the threshold: x ∈ Gτ if and only if x > τ. Otherwise, x ∉ Gτ. Similarly, the categorization is applied to a candidate map, M. Pixels are classified as true positives (TP), true negatives (TN), false negatives (FN), and false positives (FP) as described in the table. Accuracy profiles are plotted in Fig 6.

  6. S

    CIESIN/CIAT: Population Density Grid, v3 (GPWv3) (1990, 2000, 2010) for...

    • dataportal.senckenberg.de
    zip
    Updated Dec 17, 2020
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    Bachmann (2020). CIESIN/CIAT: Population Density Grid, v3 (GPWv3) (1990, 2000, 2010) for UNDESERT study areas in Burkina Faso, Benin, Niger and Senegal [Dataset]. https://dataportal.senckenberg.de/dataset/ciesinciat-population-density-grid-v3-gpwv3-1990-2000-2010-for-undesert-study
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    zipAvailable download formats
    Dataset updated
    Dec 17, 2020
    Dataset provided by
    Senckenberg Biodiversitätsinformatik
    Authors
    Bachmann
    Time period covered
    1990 - 2010
    Area covered
    Burkina Faso, Benin, Senegal, Niger
    Description

    The population density maps presented here for the UNDESERT study areas in Burkina Faso, Benin, Niger and Senegal for 1990, 2000 and 2010 were produced by the Columbia University Center for International Earth Science Information Network (CIESIN) in collaboration with the Centro Internacional de Agricultura Tropical (CIAT). CIESIN/CIAT population density grids are available for the entire globe at a 2.5 arc-minutes resolution (http://sedac.ciesin.columbia.edu/data/collection/gpw-v3/sets/browse). The UNDESERT project (EU FP7 243906), financed by the European Commission, Directorate General for Research and Innovation, Environment Program, aims to improve the Understanding and Combating of Desertification to Mitigate its Impact on Ecosystem Services in West Africa. Humans originate and contribute significantly to desertification processes. Based on the CIESIN/CIAT population density grids we want to illustrate how population density changed in the UNDESERT study areas and countries during the last 20 years. Data for 1990 and 2000 were downloaded from the Gridded Population of the World, Version 3 (GPWv3) consisting of estimates of human population by 2.5 arc-minute grid cells and associated data sets dated circa 2000. Data for 2010 were copied from the Gridded Population of the World, Version 3 (GPWv3) consisting in a future estimate of human population by 2.5 arc-minute grid cells. The future estimate population values are extrapolated based on a combination of subnational growth rates from census dates and national growth rates from United Nations statistics.

    Source: http://sedac.ciesin.columbia.edu/data/set/gpw-v3-population-density Center for International Earth Science Information Network (CIESIN)/Columbia University, and Centro Internacional de Agricultura Tropical (CIAT). 2005. Gridded Population of the World, Version 3 (GPWv3): Population Density Grid. Palisades, NY: NASA Socioeconomic Data and Applications Center (SEDAC). http://sedac.ciesin.columbia.edu/data/set/gpw-v3-population-density. Accessed 28/10/2013 And http://sedac.ciesin.columbia.edu/data/set/gpw-v3-population-density-future-estimates Center for International Earth Science Information Network (CIESIN)/Columbia University, and Centro Internacional de Agricultura Tropical (CIAT). 2005. Gridded Population of the World, Version 3 (GPWv3): Population Density Grid, Future Estimates. Palisades, NY: NASA Socioeconomic Data and Applications Center (SEDAC). http://sedac.ciesin.columbia.edu/data/set/gpw-v3-population-density-future-estimates. Accessed 28/10/2013

  7. A

    Pakistan & India: High Resolution Population Density Maps

    • data.amerigeoss.org
    geotiff
    Updated Oct 22, 2024
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    UN Humanitarian Data Exchange (2024). Pakistan & India: High Resolution Population Density Maps [Dataset]. https://data.amerigeoss.org/es/dataset/pakistan-india_all-files-high-resolution-population-density-maps
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    geotiff(548772550), geotiff(548707630), geotiff(548584566), geotiff(548860260), geotiff(548581474), geotiff(548580093), geotiff(548539082)Available download formats
    Dataset updated
    Oct 22, 2024
    Dataset provided by
    UN Humanitarian Data Exchange
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Area covered
    India, Pakistan
    Description

    Facebook and Columbia University - CIESIN provide the High Resolution Settlement Layer as the world's most accurate population datasets. More info can be found here: https://dataforgood.fb.com/tools/population-density-maps/

    These maps are the distribution of human population spanning Pakistan and India. Each of the 13 TIFF files is a 10 x 10 degree tile (the lower latitude coordinate and longitude coordinates are in the file name). A VRT file is also included.

  8. a

    North America Population Density 2020

    • hub.arcgis.com
    Updated Apr 19, 2023
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    CECAtlas (2023). North America Population Density 2020 [Dataset]. https://hub.arcgis.com/maps/1d0db1455e014ffe92ea4265145f045b
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    Dataset updated
    Apr 19, 2023
    Dataset authored and provided by
    CECAtlas
    License
    Area covered
    Description

    The Gridded Population of the World, Version 4 (GPWv4): Population Density, Revision 11 consists of estimates of human population density (number of persons per square kilometer) based on counts consistent with national censuses and population registers. A proportional allocation gridding algorithm, utilizing approximately 13.5 million national and sub-national administrative units, was used to assign population counts to 30 arc-second grid cells. The population density rasters were created by dividing the population count raster for a given target year by the land area raster. The data files were produced as global rasters at 30 arc-second (~1 km at the equator) resolution. To enable faster global processing, and in support of research communities, the 30 arc-second count data were aggregated to 2.5 arc-minute, 15 arc-minute, 30 arc-minute and 1-degree resolutions to produce density rasters at these resolutions.Source: Center for International Earth Science Information Network - CIESIN - Columbia University. 2018. Gridded Population of the World, Version 4 (GPWv4): Population Density, Revision 11. Palisades, New York: NASA Socioeconomic Data and Applications Center (SEDAC). Available at https://doi.org/10.7927/H49C6VHW. (October 2022)Files Download

  9. E

    UK gridded population at 1 km resolution for 2021 based on Census 2021/2022...

    • catalogue.ceh.ac.uk
    • hosted-metadata.bgs.ac.uk
    • +2more
    zip
    Updated Feb 26, 2025
    + more versions
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    E. Carnell; S.J. Tomlinson; S. Reis (2025). UK gridded population at 1 km resolution for 2021 based on Census 2021/2022 and Land Cover Map 2021 [Dataset]. http://doi.org/10.5285/7beefde9-c520-4ddf-897a-0167e8918595
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    zipAvailable download formats
    Dataset updated
    Feb 26, 2025
    Dataset provided by
    NERC EDS Environmental Information Data Centre
    Authors
    E. Carnell; S.J. Tomlinson; S. Reis
    Time period covered
    Jan 1, 2021 - Dec 31, 2022
    Area covered
    Dataset funded by
    Department for Environment Food and Rural Affairs
    Description

    This dataset contains gridded human population with a spatial resolution of 1 km x 1 km for the UK based on Census 2021 (Census 2022 for Scotland) and Land Cover Map 2021 input data. Data on population distribution for the United Kingdom is available from statistical offices in England, Wales, Northern Ireland and Scotland and provided to the public e.g. via the Office for National Statistics (ONS). Population data is typically provided in tabular form or, based on a range of different geographical units, in file types for geographical information systems (GIS), for instance as ESRI Shapefiles. The geographical units reflect administrative boundaries at different levels of detail, from Devolved Administration to Output Areas (OA), wards or intermediate geographies. While the presentation of data on the level of these geographical units is useful for statistical purposes, accounting for spatial variability for instance of environmental determinants of public health requires a more spatially homogeneous population distribution. For this purpose, the dataset presented here combines 2021/2022 UK Census population data on Output Area level with Land Cover Map 2021 land-use classes 'urban' and 'suburban' to create a consistent and comprehensive gridded population data product at 1 km x 1 km spatial resolution. The mapping product is based on British National Grid (OSGB36 datum).

  10. c

    Data from: Data and code for "Sustainable Human Population Density in...

    • investigacion.cenieh.es
    • portalcienciaytecnologia.jcyl.es
    Updated 2022
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    Rodríguez, Jesús; Sommer, Christian; Willmes, Christian; Mateos, Ana; Rodríguez, Jesús; Sommer, Christian; Willmes, Christian; Mateos, Ana (2022). Data and code for "Sustainable Human Population Density in Western Europe between 560.000 and 360.000 years ago" [Dataset]. https://investigacion.cenieh.es/documentos/67321e95aea56d4af048594b?lang=ca
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    Dataset updated
    2022
    Authors
    Rodríguez, Jesús; Sommer, Christian; Willmes, Christian; Mateos, Ana; Rodríguez, Jesús; Sommer, Christian; Willmes, Christian; Mateos, Ana
    Area covered
    Western Europe
    Description

    This dataset contains the modeling results GIS data (maps) of the study “Sustainable Human Population Density in Western Europe between 560.000 and 360.000 years ago” by Rodríguez et al. (2022). The NPP data (npp.zip) was computed using an empirical formula (the Miami model) from palaeo temperature and palaeo precipitation data aggregated for each timeslice from the Oscillayers dataset (Gamisch, 2019), as defined in Rodríguez et al. (2022, in review). The Population densities file (pop_densities.zip) contains the computed minimum and maximum population densities rasters for each of the defined MIS timeslices. With the population density value Dc in logarithmic form log(Dc). The Species Distribution Model (sdm.7z) includes input data (folder /data), intermediate results (folder /work) and results and figures (folder /results). All modelling steps are included as an R project in the folder /scripts. The R project is subdivided into individual scripts for data preparation (1.x), sampling procedure (2.x), and model computation (3.x). The habitat range estimation (habitat_ranges.zip) includes the potential spatial boundaries of the hominin habitat as binary raster files with 1=presence and 0=absence. The ranges rely on a dichotomic classification of the habitat suitability with a threshold value inferred from the 5% quantile of the presence data. The habitat suitability (habitat_suitability.zip) is the result of the Species Distribution Modelling and describes the environmental suitability for hominin presence based on the sites considered in this study. The values range between 0=low and 1=high suitability. The dataset includes the mean (pred_mean) and standard deviation (pred_std) of multiple model runs.

  11. n

    Population Growth and Density

    • library.ncge.org
    Updated Jul 27, 2021
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    NCGE (2021). Population Growth and Density [Dataset]. https://library.ncge.org/documents/72e0206bdaa84e1fbe271ee05717759a
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    Dataset updated
    Jul 27, 2021
    Dataset authored and provided by
    NCGE
    License

    Attribution-NonCommercial-ShareAlike 4.0 (CC BY-NC-SA 4.0)https://creativecommons.org/licenses/by-nc-sa/4.0/
    License information was derived automatically

    Description

    Author: S Wicklund, educator, Minnesota Alliance for Geographic EducationGrade/Audience: high schoolResource type: lessonSubject topic(s): population, mapsRegion: worldStandards: Minnesota Social Studies Standards

    Standard 1. People use geographic representations and geospatial technologies to acquire, process and report information within a spatial context.

    Standard 3. Places have physical characteristics (such as climate, topography and vegetation) and human characteristics (such as culture, population, political and economic systems).

    Standard 5. The characteristics, distribution and migration of human populations on the earth’s surface influence human systems (cultural, economic and political systems).Objectives: Students will be able to:

    1. Use maps of population distribution to examine the history of world population growth.
    2. Construct a dot map to show current world population distribution.
    3. Describe the difference between arithmetic and physiological densities.
    4. Craft a response to a prompt to evaluate the Negative Population Growth perspective. Summary: Students will use maps of population distribution to examine the history of world population growth. They will also examine current world population distribution. Students will role-play the difference between arithmetic and physiologic densities using Egypt as an example. They will then craft a response to a prompt where they evaluate the Negative Population Growth perspective.
  12. A

    Population Density base tiles

    • data.amerigeoss.org
    • communities-amerigeoss.opendata.arcgis.com
    • +1more
    Updated Apr 11, 2017
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    Maps.com (2017). Population Density base tiles [Dataset]. https://data.amerigeoss.org/de/dataset/population-density-base-tiles
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    geojson, html, arcgis geoservices rest api, csvAvailable download formats
    Dataset updated
    Apr 11, 2017
    Dataset provided by
    Maps.com
    Description

    Gridded Population of the World, Version 3 (GPWv3), Future Estimates 2010 consists of estimates of human population for the year 2010 by 2.5 arc-minute grid cells.

  13. W

    GPWv4: Population Density - 2015

    • cloud.csiss.gmu.edu
    • hub.arcgis.com
    • +1more
    Updated Jun 27, 2019
    + more versions
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    Caribbean Marine Atlas (CMA) (2019). GPWv4: Population Density - 2015 [Dataset]. https://cloud.csiss.gmu.edu/uddi/dataset/gpwv4-population-density-2015
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    Dataset updated
    Jun 27, 2019
    Dataset provided by
    Caribbean Marine Atlas (CMA)
    Description

    Gridded Population of the World, Version 4 (GPWv4): Population Density displays human population density estimates represented by number of persons per square kilometer in each grid cell for the year 2015, derived by dividing the population count grids by land area grids. See more information at: http://dx.doi.org/10.7927/H4NP22DQ.

  14. f

    The accuracy, recall, and precision for the population classifications shown...

    • plos.figshare.com
    xls
    Updated Jun 8, 2023
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    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert (2023). The accuracy, recall, and precision for the population classifications shown in the header and illustrated in Fig 6. [Dataset]. http://doi.org/10.1371/journal.pone.0248646.t004
    Explore at:
    xlsAvailable download formats
    Dataset updated
    Jun 8, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Description

    The accuracy, recall, and precision for the population classifications shown in the header and illustrated in Fig 6.

  15. f

    This compares the goodness-of-fit ratio across the three maps, aggregating...

    • plos.figshare.com
    xls
    Updated Jun 1, 2023
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    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert (2023). This compares the goodness-of-fit ratio across the three maps, aggregating HRSL and both WP surfaces to 1 km resolution to match LS and GPW. [Dataset]. http://doi.org/10.1371/journal.pone.0248646.t003
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    xlsAvailable download formats
    Dataset updated
    Jun 1, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Brendan Fries; Carlos A. Guerra; Guillermo A. García; Sean L. Wu; Jordan M. Smith; Jeremías Nzamio Mba Oyono; Olivier T. Donfack; José Osá Osá Nfumu; Simon I. Hay; David L. Smith; Andrew J. Dolgert
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Description

    Normalization discounts the effect of uniform changes in population size, which provides a better comparison between high-and-low population districts.

  16. Anthropocene WM Landsat

    • coe-remote-sensing-and-environment-esridech.hub.arcgis.com
    Updated Jan 7, 2020
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    ArcGIS Demoportal Esri Deutschland & Schweiz (2020). Anthropocene WM Landsat [Dataset]. https://coe-remote-sensing-and-environment-esridech.hub.arcgis.com/maps/157ddf5882f043229bd76e3a354ea647
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    Dataset updated
    Jan 7, 2020
    Dataset provided by
    Esrihttp://esri.com/
    Authors
    ArcGIS Demoportal Esri Deutschland & Schweiz
    Area covered
    Description

    The Global Human Footprint dataset of the Last of the Wild Project, version 2, 2005 (LWPv2) is the Human Influence Index (HII) normalized by biome and realm. The HII is a global dataset of 1 km grid cells, created from nine global data layers covering human population pressure (population density), human land use and infraestructure (built-up areas, nighttime lights, land use/land cover) and human access (coastlines, roads, navigable rivers).The Human Footprint Index (HF) map, expresses as a percentage the relative human influence in each terrestrial biome. HF values from 0 to 100. A value of zero represents the least influence -the "most wild" part of the biome with value of 100 representing the most influence (least wild) part of the biome.

  17. a

    Population Density 2015 tiles

    • hub.arcgis.com
    • fesec-cesj.opendata.arcgis.com
    • +1more
    Updated Apr 11, 2017
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    Maps.com (2017). Population Density 2015 tiles [Dataset]. https://hub.arcgis.com/maps/beyondmaps::population-density-2015-tiles/about
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    Dataset updated
    Apr 11, 2017
    Dataset provided by
    Maps.com
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Area covered
    Description

    Estimates of human population for the year 2015 by 2.5 arc-minute grid cells. 2015 global population density from CIESIN Gridded Population of the World version 4. Center for International Earth Science Information Network - CIESIN - Columbia University. 2016. Gridded Population of the World, Version 4 (GPWv4): Population Density. Palisades, NY: NASA Socioeconomic Data and Applications Center (SEDAC). http://dx.doi.org/10.7927/H4NP22DQ Accessed 5 April 2017.

  18. n

    LandScan

    • cmr.earthdata.nasa.gov
    not provided
    Updated Dec 17, 2018
    + more versions
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    (2018). LandScan [Dataset]. https://cmr.earthdata.nasa.gov/search/concepts/C1214613660-SCIOPS
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    not providedAvailable download formats
    Dataset updated
    Dec 17, 2018
    Time period covered
    Jan 1, 2000 - Dec 31, 2017
    Area covered
    Earth
    Description

    The LandScan data set is a worldwide population database compiled on a 30" X 30" latitude/longitude grid. Census counts (at sub-national level) were apportioned to each grid cell based on likelihood coefficients, which are based on proximity to roads, slope, land cover, nighttime lights, and other data sets. LandScan has been developed as part of the Oak Ridge National Laboratory (ORNL) Global Population Project for estimating ambient populations at risk. The LandScan files are available via the internet in ESRI grid format by continent and for the world. You can access the data files after user registration through the data links. For an overview of the methods used to develop LandScan, please read the documentation and FAQs.

    [Summary provided by Oak Ridge National Laboratory]

  19. a

    Population Density

    • ethiopia.africageoportal.com
    • africageoportal.com
    Updated May 19, 2020
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    Africa GeoPortal (2020). Population Density [Dataset]. https://ethiopia.africageoportal.com/maps/3373ae27a2524994aeb794a10b31b0e2
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    Dataset updated
    May 19, 2020
    Dataset authored and provided by
    Africa GeoPortal
    Area covered
    Description

    Population density is a measurement of population per unit area or unit volume. It is frequently applied to living organisms, and particularly to humans. It is a key geographic term. (Wikipedia)

  20. d

    Human Population in the Western United States (1900 - 2000).

    • datadiscoverystudio.org
    • dataone.org
    • +1more
    zip
    Updated May 20, 2018
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    (2018). Human Population in the Western United States (1900 - 2000). [Dataset]. http://datadiscoverystudio.org/geoportal/rest/metadata/item/78ccb3164a3447d080929354b1a05352/html
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    zipAvailable download formats
    Dataset updated
    May 20, 2018
    Area covered
    United States
    Description

    description: Map containing historical census data from 1900 - 2000 throughout the western United States at the county level. Data includes total population, population density, and percent population change by decade for each county. Population data was obtained from the US Census Bureau and joined to 1:2,000,000 scale National Atlas counties shapefile.; abstract: Map containing historical census data from 1900 - 2000 throughout the western United States at the county level. Data includes total population, population density, and percent population change by decade for each county. Population data was obtained from the US Census Bureau and joined to 1:2,000,000 scale National Atlas counties shapefile.

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NASA SEDAC at the Center for International Earth Science Information Network (2019). GPWv411: Population Density (Gridded Population of the World Version 4.11) [Dataset]. http://doi.org/10.7927/H49C6VHW

GPWv411: Population Density (Gridded Population of the World Version 4.11)

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352 scholarly articles cite this dataset (View in Google Scholar)
Dataset updated
Aug 11, 2019
Dataset provided by
NASA SEDAC at the Center for International Earth Science Information Network
Time period covered
Jan 1, 2000 - Jan 1, 2020
Area covered
Earth
Description

This dataset contains estimates of the number of persons per square kilometer consistent with national censuses and population registers. There is one image for each modeled year. General Documentation The Gridded Population of World Version 4 (GPWv4), Revision 11 models the distribution of global human population for the years 2000, 2005, 2010, 2015, and 2020 on 30 arc-second (approximately 1 km) grid cells. Population is distributed to cells using proportional allocation of population from census and administrative units. Population input data are collected at the most detailed spatial resolution available from the results of the 2010 round of censuses, which occurred between 2005 and 2014. The input data are extrapolated to produce population estimates for each modeled year.

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