4 datasets found
  1. Replication dataset for PIIE PB 24-12, Is the United States undergoing a...

    • piie.com
    Updated Oct 16, 2024
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    Robert Z. Lawrence (2024). Replication dataset for PIIE PB 24-12, Is the United States undergoing a manufacturing renaissance that will boost the middle class? by Robert Z. Lawrence (2024). [Dataset]. https://www.piie.com/publications/policy-briefs/2024/united-states-undergoing-manufacturing-renaissance-will-boost
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    Dataset updated
    Oct 16, 2024
    Dataset provided by
    Peterson Institute for International Economicshttp://www.piie.com/
    Authors
    Robert Z. Lawrence
    Area covered
    United States
    Description

    This data package includes the underlying data files to replicate the data and charts presented in Is the United States undergoing a manufacturing renaissance that will boost the middle class? by Robert Z. Lawrence, PIIE Policy Brief 24-12.

    If you use the data, please cite as: Lawrence, Robert Z. 2024. Is the United States undergoing a manufacturing renaissance that will boost the middle class? PIIE Policy Brief 24-12. Washington, DC: Peterson Institute for International Economics.

  2. ACS Median Household Income Variables - Boundaries

    • covid-hub.gio.georgia.gov
    • resilience.climate.gov
    • +7more
    Updated Oct 22, 2018
    + more versions
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    Esri (2018). ACS Median Household Income Variables - Boundaries [Dataset]. https://covid-hub.gio.georgia.gov/maps/45ede6d6ff7e4cbbbffa60d34227e462
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    Dataset updated
    Oct 22, 2018
    Dataset authored and provided by
    Esrihttp://esri.com/
    Area covered
    Description

    This layer shows median household income by race and by age of householder. This is shown by tract, county, and state boundaries. This service is updated annually to contain the most currently released American Community Survey (ACS) 5-year data, and contains estimates and margins of error. There are also additional calculated attributes related to this topic, which can be mapped or used within analysis. Median income and income source is based on income in past 12 months of survey. This layer is symbolized to show median household income. To see the full list of attributes available in this service, go to the "Data" tab, and choose "Fields" at the top right. Current Vintage: 2019-2023ACS Table(s): B19013B, B19013C, B19013D, B19013E, B19013F, B19013G, B19013H, B19013I, B19049, B19053Data downloaded from: Census Bureau's API for American Community Survey Date of API call: December 12, 2024National Figures: data.census.govThe United States Census Bureau's American Community Survey (ACS):About the SurveyGeography & ACSTechnical DocumentationNews & UpdatesThis ready-to-use layer can be used within ArcGIS Pro, ArcGIS Online, its configurable apps, dashboards, Story Maps, custom apps, and mobile apps. Data can also be exported for offline workflows. For more information about ACS layers, visit the FAQ. Please cite the Census and ACS when using this data.Data Note from the Census:Data are based on a sample and are subject to sampling variability. The degree of uncertainty for an estimate arising from sampling variability is represented through the use of a margin of error. The value shown here is the 90 percent margin of error. The margin of error can be interpreted as providing a 90 percent probability that the interval defined by the estimate minus the margin of error and the estimate plus the margin of error (the lower and upper confidence bounds) contains the true value. In addition to sampling variability, the ACS estimates are subject to nonsampling error (for a discussion of nonsampling variability, see Accuracy of the Data). The effect of nonsampling error is not represented in these tables.Data Processing Notes:This layer is updated automatically when the most current vintage of ACS data is released each year, usually in December. The layer always contains the latest available ACS 5-year estimates. It is updated annually within days of the Census Bureau's release schedule. Click here to learn more about ACS data releases.Boundaries come from the US Census TIGER geodatabases, specifically, the National Sub-State Geography Database (named tlgdb_(year)_a_us_substategeo.gdb). Boundaries are updated at the same time as the data updates (annually), and the boundary vintage appropriately matches the data vintage as specified by the Census. These are Census boundaries with water and/or coastlines erased for cartographic and mapping purposes. For census tracts, the water cutouts are derived from a subset of the 2020 Areal Hydrography boundaries offered by TIGER. Water bodies and rivers which are 50 million square meters or larger (mid to large sized water bodies) are erased from the tract level boundaries, as well as additional important features. For state and county boundaries, the water and coastlines are derived from the coastlines of the 2023 500k TIGER Cartographic Boundary Shapefiles. These are erased to more accurately portray the coastlines and Great Lakes. The original AWATER and ALAND fields are still available as attributes within the data table (units are square meters).The States layer contains 52 records - all US states, Washington D.C., and Puerto RicoCensus tracts with no population that occur in areas of water, such as oceans, are removed from this data service (Census Tracts beginning with 99).Percentages and derived counts, and associated margins of error, are calculated values (that can be identified by the "_calc_" stub in the field name), and abide by the specifications defined by the American Community Survey.Field alias names were created based on the Table Shells file available from the American Community Survey Summary File Documentation page.Negative values (e.g., -4444...) have been set to null, with the exception of -5555... which has been set to zero. These negative values exist in the raw API data to indicate the following situations:The margin of error column indicates that either no sample observations or too few sample observations were available to compute a standard error and thus the margin of error. A statistical test is not appropriate.Either no sample observations or too few sample observations were available to compute an estimate, or a ratio of medians cannot be calculated because one or both of the median estimates falls in the lowest interval or upper interval of an open-ended distribution.The median falls in the lowest interval of an open-ended distribution, or in the upper interval of an open-ended distribution. A statistical test is not appropriate.The estimate is controlled. A statistical test for sampling variability is not appropriate.The data for this geographic area cannot be displayed because the number of sample cases is too small.

  3. Clark County, WA, US Demographics 2025

    • point2homes.com
    html
    Updated 2025
    + more versions
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    Point2Homes (2025). Clark County, WA, US Demographics 2025 [Dataset]. https://www.point2homes.com/US/Neighborhood/WA/Clark-County-Demographics.html
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    htmlAvailable download formats
    Dataset updated
    2025
    Dataset authored and provided by
    Point2Homeshttps://plus.google.com/116333963642442482447/posts
    Time period covered
    2025
    Area covered
    Clark County, Washington, United States
    Variables measured
    Asian, Other, White, 2 units, Over 65, Median age, Blue collar, Mobile home, 3 or 4 units, 5 to 9 units, and 70 more
    Description

    Comprehensive demographic dataset for Clark County, WA, US including population statistics, household income, housing units, education levels, employment data, and transportation with year-over-year changes.

  4. Kirkland, WA, US Demographics 2025

    • point2homes.com
    html
    Updated 2025
    + more versions
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    Point2Homes (2025). Kirkland, WA, US Demographics 2025 [Dataset]. https://www.point2homes.com/US/Neighborhood/WA/Kirkland-Demographics.html
    Explore at:
    htmlAvailable download formats
    Dataset updated
    2025
    Dataset authored and provided by
    Point2Homeshttps://plus.google.com/116333963642442482447/posts
    Time period covered
    2025
    Area covered
    Kirkland, United States, Washington
    Variables measured
    Asian, Other, White, 2 units, Over 65, Median age, Blue collar, Mobile home, 3 or 4 units, 5 to 9 units, and 72 more
    Description

    Comprehensive demographic dataset for Kirkland, WA, US including population statistics, household income, housing units, education levels, employment data, and transportation with year-over-year changes.

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    Learn how you can add new datasets to our index.

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Click to copy link
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Close
Cite
Robert Z. Lawrence (2024). Replication dataset for PIIE PB 24-12, Is the United States undergoing a manufacturing renaissance that will boost the middle class? by Robert Z. Lawrence (2024). [Dataset]. https://www.piie.com/publications/policy-briefs/2024/united-states-undergoing-manufacturing-renaissance-will-boost
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Replication dataset for PIIE PB 24-12, Is the United States undergoing a manufacturing renaissance that will boost the middle class? by Robert Z. Lawrence (2024).

Explore at:
Dataset updated
Oct 16, 2024
Dataset provided by
Peterson Institute for International Economicshttp://www.piie.com/
Authors
Robert Z. Lawrence
Area covered
United States
Description

This data package includes the underlying data files to replicate the data and charts presented in Is the United States undergoing a manufacturing renaissance that will boost the middle class? by Robert Z. Lawrence, PIIE Policy Brief 24-12.

If you use the data, please cite as: Lawrence, Robert Z. 2024. Is the United States undergoing a manufacturing renaissance that will boost the middle class? PIIE Policy Brief 24-12. Washington, DC: Peterson Institute for International Economics.

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