100+ datasets found
  1. Average Commute Time by County

    • data.wu.ac.at
    • documentation-resources.opendatasoft.com
    Updated Aug 2, 2017
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    U.S. Census Bureau (2017). Average Commute Time by County [Dataset]. https://data.wu.ac.at/schema/public_opendatasoft_com/Y29tbXV0ZS10aW1lLXVzLWNvdW50aWVz
    Explore at:
    csv, json, xls, application/vnd.geo+json, kmlAvailable download formats
    Dataset updated
    Aug 2, 2017
    Dataset provided by
    United States Census Bureauhttp://census.gov/
    License

    https://www.census.gov/data/developers/about/terms-of-service.htmlhttps://www.census.gov/data/developers/about/terms-of-service.html

    Description

    Average commute time in each U.S. county in minutes.

    This product uses the Census Bureau Data API but is not endorsed or certified by the Census Bureau.

  2. Duration of daily commute in the U.S. 2025

    • statista.com
    Updated Jul 25, 2025
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    Statista (2025). Duration of daily commute in the U.S. 2025 [Dataset]. https://www.statista.com/forecasts/997116/duration-of-daily-commute-in-the-us
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    Dataset updated
    Jul 25, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Jul 2024 - Jun 2025
    Area covered
    United States
    Description

    When asked about "Duration of daily commute", ** percent of U.S. respondents answer ******************. This online survey was conducted in 2025, among 13,687 consumers.

  3. U.S. workers' mean time to commute to work by region 2019

    • statista.com
    Updated Aug 30, 2023
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    Statista (2023). U.S. workers' mean time to commute to work by region 2019 [Dataset]. https://www.statista.com/statistics/798393/us-workers-average-commuting-time-region/
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    Dataset updated
    Aug 30, 2023
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2019
    Area covered
    United States
    Description

    This statistic depicts the average time spent by U.S. workers to commute to work in 2019, by region. In that year, U.S. workers from the Northeast region spent on average 31 minutes to travel to work.

  4. F

    Mean Commuting Time for Workers (5-year estimate) in New York County, NY

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
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    (2024). Mean Commuting Time for Workers (5-year estimate) in New York County, NY [Dataset]. https://fred.stlouisfed.org/series/B080ACS036061
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    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Manhattan, New York County, New York, New York
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in New York County, NY (B080ACS036061) from 2009 to 2023 about New York County, NY; commuting time; New York; workers; average; NY; 5-year; and USA.

  5. F

    Mean Commuting Time for Workers (5-year estimate) in Los Angeles County, CA

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
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    (2024). Mean Commuting Time for Workers (5-year estimate) in Los Angeles County, CA [Dataset]. https://fred.stlouisfed.org/series/B080ACS006037
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    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Los Angeles County, California
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in Los Angeles County, CA (B080ACS006037) from 2009 to 2023 about commuting time; Los Angeles County, CA; Los Angeles; average; workers; CA; 5-year; and USA.

  6. Latin America: average public transport commute time 2018

    • statista.com
    Updated Jul 23, 2025
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    Statista (2025). Latin America: average public transport commute time 2018 [Dataset]. https://www.statista.com/statistics/885545/latin-america-commute-time-public-transport/
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    Dataset updated
    Jul 23, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    May 2018
    Area covered
    Latin America, LAC
    Description

    This statistic depicts the average time people spend on their way to work with public transport in Latin America as of May 2018. In that period, Colombia's capital Bogota was at the top of the list, with an average commute time of ** minutes.

  7. C

    Travel Time to Work

    • data.ccrpc.org
    csv
    Updated Oct 16, 2024
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    Champaign County Regional Planning Commission (2024). Travel Time to Work [Dataset]. https://data.ccrpc.org/dataset/travel-time-to-work
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    csvAvailable download formats
    Dataset updated
    Oct 16, 2024
    Dataset authored and provided by
    Champaign County Regional Planning Commission
    License

    Open Database License (ODbL) v1.0https://www.opendatacommons.org/licenses/odbl/1.0/
    License information was derived automatically

    Description

    The Travel Time to Work indicator compares the mean, or average, commute time for Champaign County residents to the mean commute time for residents of Illinois and the United States as a whole. On its own, mean travel time of all commuters on all mode types could be reflective of a number of different conditions. Congestion, mode choice, changes in residential patterns, changes in the location of major employment centers, and changes in the transit network can all impact travel time in different and often conflicting ways. Since the onset of the COVID-19 pandemic in 2020, the workplace location (office vs. home) is another factor that can impact the mean travel time of an area. We don’t recommend trying to draw any conclusions about conditions in Champaign County, or anywhere else, based on mean travel time alone.

    However, when combined with other indicators in the Mobility category (and other categories), mean travel time to work is a valuable measure of transportation behaviors in Champaign County.

    Champaign County’s mean travel time to work is lower than the mean travel time to work in Illinois and the United States. Based on this figure, the state of Illinois has the longest commutes of the three analyzed areas.

    The year-to-year fluctuations in mean travel time have been statistically significant in the United States since 2014, and in Illinois in 2021 and 2022. Champaign County’s year-to-year fluctuations in mean travel time were statistically significant from 2021 to 2022, the first time since this data first started being tracked in 2005.

    Mean travel time data was sourced from the U.S. Census Bureau’s American Community Survey (ACS) 1-Year Estimates, which are released annually.

    As with any datasets that are estimates rather than exact counts, it is important to take into account the margins of error (listed in the column beside each figure) when drawing conclusions from the data.

    Due to the impact of the COVID-19 pandemic, instead of providing the standard 1-year data products, the Census Bureau released experimental estimates from the 1-year data in 2020. This includes a limited number of data tables for the nation, states, and the District of Columbia. The Census Bureau states that the 2020 ACS 1-year experimental tables use an experimental estimation methodology and should not be compared with other ACS data. For these reasons, and because data is not available for Champaign County, no data for 2020 is included in this Indicator.

    For interested data users, the 2020 ACS 1-Year Experimental data release includes a dataset on Travel Time to Work.

    Sources: U.S. Census Bureau; American Community Survey, 2023 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; (16 October 2024).; U.S. Census Bureau; American Community Survey, 2022 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; (10 October 2023).; U.S. Census Bureau; American Community Survey, 2021 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; (17 October 2022).; U.S. Census Bureau; American Community Survey, 2019 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; (29 March 2021).; U.S. Census Bureau; American Community Survey, 2018 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; (29 March 2021).; U.S. Census Bureau; American Community Survey, 2017 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (13 September 2018).; U.S. Census Bureau; American Community Survey, 2016 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (14 September 2017).; U.S. Census Bureau; American Community Survey, 2015 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (19 September 2016).; U.S. Census Bureau; American Community Survey, 2014 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2013 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2012 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2011 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2010 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2009 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2008 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2007 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2006 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).; U.S. Census Bureau; American Community Survey, 2005 American Community Survey 1-Year Estimates, Table S0801; generated by CCRPC staff; using American FactFinder; (16 March 2016).

  8. ACS Travel Time To Work Variables - Boundaries

    • hub.arcgis.com
    • demographics-resources-njtpa.hub.arcgis.com
    Updated Oct 20, 2018
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    Esri (2018). ACS Travel Time To Work Variables - Boundaries [Dataset]. https://hub.arcgis.com/maps/a31b5c96d5c54b2eb216d8f3896e35fc
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    Dataset updated
    Oct 20, 2018
    Dataset authored and provided by
    Esrihttp://esri.com/
    Area covered
    Description

    This layer shows workers' place of residence by commute length. 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. This layer is symbolized to show the percentage of commuters whose commute is 90 minutes or more. 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): B08303Data 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.

  9. T

    Vital Signs: Commute Time (by Place of Residence) – by tract (2022)

    • data.bayareametro.gov
    • splitgraph.com
    csv, xlsx, xml
    Updated Jan 4, 2023
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    (2023). Vital Signs: Commute Time (by Place of Residence) – by tract (2022) [Dataset]. https://data.bayareametro.gov/dataset/Vital-Signs-Commute-Time-by-Place-of-Residence-by-/cxe7-96p6
    Explore at:
    xml, csv, xlsxAvailable download formats
    Dataset updated
    Jan 4, 2023
    Description

    VITAL SIGNS INDICATOR
    Commute Time (T3)

    FULL MEASURE NAME
    Commute time by residential location

    LAST UPDATED
    January 2023

    DESCRIPTION
    Commute time refers to the average number of minutes a commuter spends traveling to work on a typical day. The dataset includes metropolitan area, county, city, and census tract tables by place of residence.

    DATA SOURCE
    U.S. Census Bureau: Decennial Census (1980-2000) - via MTC/ABAG Bay Area Census - http://www.bayareacensus.ca.gov/transportation.htm

    U.S. Census Bureau: American Community Survey - https://data.census.gov/
    2006-2021
    Form C08136
    Form C08536
    Form B08301
    Form B08301
    Form B08301

    CONTACT INFORMATION
    vitalsigns.info@bayareametro.gov

    METHODOLOGY NOTES (across all datasets for this indicator)
    For the decennial Census datasets, breakdown of commute times was unavailable by mode; only overall data could be provided on a historical basis.

    For the American Community Survey (ACS) datasets, 1-year rolling average data was used for all metros, region and county geographic levels, while 5-year rolling average data was used for cities and tracts. This is due to the fact that more localized data is not included in the 1-year dataset across all Bay Area cities. Similarly, modal data is not available for every Bay Area city or census tract, even when the 5-year data is used for those localized geographies.

    Regional commute times were calculated by summing aggregate county travel times and dividing by the relevant population; similarly, modal commute times were calculated using aggregate times and dividing by the number of communities choosing that mode for the given geography.

    Census tract data is not available for tracts with insufficient numbers of residents. The metropolitan area comparison was performed for the nine-county San Francisco Bay Area in addition to the primary metropolitan statistical areas (MSAs) for the nine other major metropolitan areas.

  10. F

    Mean Commuting Time for Workers (5-year estimate) in St. Louis city, MO

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
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    (2024). Mean Commuting Time for Workers (5-year estimate) in St. Louis city, MO [Dataset]. https://fred.stlouisfed.org/series/B080ACS029510
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    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Missouri, St. Louis
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in St. Louis city, MO (B080ACS029510) from 2009 to 2023 about St. Louis City, MO; commuting time; St. Louis; MO; average; workers; 5-year; and USA.

  11. Vital Signs: Commute Time (by Place of Employment) – by county

    • data.bayareametro.gov
    csv, xlsx, xml
    Updated Apr 13, 2020
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    U.S. Census Bureau (2020). Vital Signs: Commute Time (by Place of Employment) – by county [Dataset]. https://data.bayareametro.gov/dataset/Vital-Signs-Commute-Time-by-Place-of-Employment-by/myjg-apsn
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    csv, xlsx, xmlAvailable download formats
    Dataset updated
    Apr 13, 2020
    Dataset provided by
    United States Census Bureauhttp://census.gov/
    Authors
    U.S. Census Bureau
    Description

    VITAL SIGNS INDICATOR Commute Time (T4)

    FULL MEASURE NAME Commute time by employment location

    LAST UPDATED April 2020

    DESCRIPTION Commute time refers to the average number of minutes a commuter spends traveling to work on a typical day. The dataset includes metropolitan area, county, city, and census tract tables by place of residence.

    DATA SOURCE U.S. Census Bureau: Decennial Census (1980-2000) - via MTC/ABAG Bay Area Census http://www.bayareacensus.ca.gov/transportation.htm

    U.S. Census Bureau: American Community Survey Table B08536 (2018 only; by place of employment) Table B08601 (2018 only; by place of employment) www.api.census.gov

    CONTACT INFORMATION vitalsigns.info@bayareametro.gov

    METHODOLOGY NOTES (across all datasets for this indicator) For the decennial Census datasets, breakdown of commute times was unavailable by mode; only overall data could be provided on a historical basis.

    For the American Community Survey datasets, 1-year rolling average data was used for all metros, region, and county geographic levels, while 5-year rolling average data was used for cities and tracts. This is due to the fact that more localized data is not included in the 1-year dataset across all Bay Area cities. Similarly, modal data is not available for every Bay Area city or census tract, even when the 5-year data is used for those localized geographies.

    Regional commute times were calculated by summing aggregate county travel times and dividing by the relevant population; similarly, modal commute time were calculated using aggregate times and dividing by the number of communities choosing that mode for the given geography. Census tract data is not available for tracts with insufficient numbers of residents.

    The metropolitan area comparison was performed for the nine-county San Francisco Bay Area in addition to the primary MSAs for the nine other major metropolitan areas.

  12. F

    Mean Commuting Time for Workers (5-year estimate) in Denver County, CO

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
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    (2024). Mean Commuting Time for Workers (5-year estimate) in Denver County, CO [Dataset]. https://fred.stlouisfed.org/series/B080ACS008031
    Explore at:
    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Denver, Colorado
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in Denver County, CO (B080ACS008031) from 2009 to 2023 about Denver County, CO; commuting time; Denver; CO; workers; average; 5-year; and USA.

  13. Latin America: average public transport commute distance 2018

    • statista.com
    Updated Jul 23, 2025
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    Statista (2025). Latin America: average public transport commute distance 2018 [Dataset]. https://www.statista.com/statistics/885837/latin-america-commute-distance-public-transport/
    Explore at:
    Dataset updated
    Jul 23, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    May 2018
    Area covered
    LAC, Latin America
    Description

    This statistic depicts the average distance people ride on their way to work with public transport in Latin America as of May 2018. In that period, in Mexico's capital Mexico City people had to commute a distance of *** kilometers on average.

  14. F

    Mean Commuting Time for Workers (5-year estimate) in Androscoggin County, ME...

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
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    (2024). Mean Commuting Time for Workers (5-year estimate) in Androscoggin County, ME [Dataset]. https://fred.stlouisfed.org/series/B080ACS023001
    Explore at:
    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Androscoggin County, Maine
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in Androscoggin County, ME (B080ACS023001) from 2009 to 2023 about Androscoggin County, ME; Lewiston; commuting time; ME; workers; average; 5-year; and USA.

  15. T

    Vital Signs: Commute Time (by Place of Residence) – Bay Area (2022)

    • data.bayareametro.gov
    csv, xlsx, xml
    Updated Jan 4, 2023
    + more versions
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    (2023). Vital Signs: Commute Time (by Place of Residence) – Bay Area (2022) [Dataset]. https://data.bayareametro.gov/dataset/Vital-Signs-Commute-Time-by-Place-of-Residence-Bay/jgx3-k2u8
    Explore at:
    xlsx, xml, csvAvailable download formats
    Dataset updated
    Jan 4, 2023
    Area covered
    San Francisco Bay Area
    Description

    VITAL SIGNS INDICATOR
    Commute Time (T3)

    FULL MEASURE NAME
    Commute time by residential location

    LAST UPDATED
    January 2023

    DESCRIPTION
    Commute time refers to the average number of minutes a commuter spends traveling to work on a typical day. The dataset includes metropolitan area, county, city, and census tract tables by place of residence.

    DATA SOURCE
    U.S. Census Bureau: Decennial Census (1980-2000) - via MTC/ABAG Bay Area Census - http://www.bayareacensus.ca.gov/transportation.htm

    U.S. Census Bureau: American Community Survey - https://data.census.gov/
    2006-2021
    Form C08136
    Form C08536
    Form B08301
    Form B08301
    Form B08301

    CONTACT INFORMATION
    vitalsigns.info@bayareametro.gov

    METHODOLOGY NOTES (across all datasets for this indicator)
    For the decennial Census datasets, breakdown of commute times was unavailable by mode; only overall data could be provided on a historical basis.

    For the American Community Survey (ACS) datasets, 1-year rolling average data was used for all metros, region and county geographic levels, while 5-year rolling average data was used for cities and tracts. This is due to the fact that more localized data is not included in the 1-year dataset across all Bay Area cities. Similarly, modal data is not available for every Bay Area city or census tract, even when the 5-year data is used for those localized geographies.

    Regional commute times were calculated by summing aggregate county travel times and dividing by the relevant population; similarly, modal commute times were calculated using aggregate times and dividing by the number of communities choosing that mode for the given geography.

    Census tract data is not available for tracts with insufficient numbers of residents. The metropolitan area comparison was performed for the nine-county San Francisco Bay Area in addition to the primary metropolitan statistical areas (MSAs) for the nine other major metropolitan areas.

  16. F

    Mean Commuting Time for Workers (5-year estimate) in King County, WA

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
    + more versions
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    (2024). Mean Commuting Time for Workers (5-year estimate) in King County, WA [Dataset]. https://fred.stlouisfed.org/series/B080ACS053033
    Explore at:
    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    King County, Washington
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in King County, WA (B080ACS053033) from 2009 to 2023 about King County, WA; commuting time; Seattle; WA; average; workers; 5-year; and USA.

  17. F

    Mean Commuting Time for Workers (5-year estimate) in Middlesex County, MA

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
    + more versions
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    (2024). Mean Commuting Time for Workers (5-year estimate) in Middlesex County, MA [Dataset]. https://fred.stlouisfed.org/series/B080ACS025017
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    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Massachusetts, Middlesex County
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in Middlesex County, MA (B080ACS025017) from 2009 to 2023 about Middlesex County, MA; commuting time; Boston; MA; workers; average; 5-year; and USA.

  18. 2023 American Community Survey: B08536 | Aggregate Travel Time to Work (in...

    • data.census.gov
    + more versions
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    ACS, 2023 American Community Survey: B08536 | Aggregate Travel Time to Work (in Minutes) of Workers by Means of Transportation to Work for Workplace Geography (ACS 1-Year Estimates Detailed Tables) [Dataset]. https://data.census.gov/table/ACSDT1Y2023.B08536?q=Nowakowski+Mc+Manus+LLP
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    Dataset provided by
    United States Census Bureauhttp://census.gov/
    Authors
    ACS
    License

    CC0 1.0 Universal Public Domain Dedicationhttps://creativecommons.org/publicdomain/zero/1.0/
    License information was derived automatically

    Time period covered
    2023
    Description

    Although the American Community Survey (ACS) produces population, demographic and housing unit estimates, the decennial census is the official source of population totals for April 1st of each decennial year. In between censuses, the Census Bureau's Population Estimates Program produces and disseminates the official estimates of the population for the nation, states, counties, cities, and towns and estimates of housing units and the group quarters population for states and counties..Information about the American Community Survey (ACS) can be found on the ACS website. Supporting documentation including code lists, subject definitions, data accuracy, and statistical testing, and a full list of ACS tables and table shells (without estimates) can be found on the Technical Documentation section of the ACS website.Sample size and data quality measures (including coverage rates, allocation rates, and response rates) can be found on the American Community Survey website in the Methodology section..Source: U.S. Census Bureau, 2023 American Community Survey 1-Year Estimates.ACS data generally reflect the geographic boundaries of legal and statistical areas as of January 1 of the estimate year. For more information, see Geography Boundaries by Year..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 roughly 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 ACS Technical Documentation). The effect of nonsampling error is not represented in these tables..Users must consider potential differences in geographic boundaries, questionnaire content or coding, or other methodological issues when comparing ACS data from different years. Statistically significant differences shown in ACS Comparison Profiles, or in data users' own analysis, may be the result of these differences and thus might not necessarily reflect changes to the social, economic, housing, or demographic characteristics being compared. For more information, see Comparing ACS Data..Tables for Workplace Geography are only available for States; Counties; Places; County Subdivisions in selected states (CT, ME, MA, MI, MN, NH, NJ, NY, PA, RI, VT, WI); Combined Statistical Areas; Metropolitan and Micropolitan Statistical Areas, and their associated Metropolitan Divisions and Principal Cities. Tables B08601, B08602, B08603, and B08604 are also available for Place parts and County Subdivision parts for the 5-year ACS datasets..These tabulations are produced to provide estimates of workers at the location of their workplace. Estimates of counts of workers at the workplace may differ from those of other programs because of variations in definitions, coverage, methods of collection, reference periods, and estimation procedures. The ACS is a household survey which provides data that pertains to individuals, families, and households..Workers include members of the Armed Forces and civilians who were at work last week..Estimates of urban and rural populations, housing units, and characteristics reflect boundaries of urban areas defined based on 2020 Census data. As a result, data for urban and rural areas from the ACS do not necessarily reflect the results of ongoing urbanization..Explanation of Symbols:- The estimate could not be computed because there were an insufficient number of sample observations. For a ratio of medians estimate, one or both of the median estimates falls in the lowest interval or highest interval of an open-ended distribution. For a 5-year median estimate, the margin of error associated with a median was larger than the median itself.N The estimate or margin of error cannot be displayed because there were an insufficient number of sample cases in the selected geographic area. (X) The estimate or margin of error is not applicable or not available.median- The median falls in the lowest interval of an open-ended distribution (for example "2,500-")median+ The median falls in the highest interval of an open-ended distribution (for example "250,000+").** The margin of error could not be computed because there were an insufficient number of sample observations.*** The margin of error could not be computed because the median falls in the lowest interval or highest interval of an open-ended distribution.***** A margin of error is not appropriate because the corresponding estimate is controlled to an independent population or housing estimate. Effectively, the corresponding estimate has no sampling error and the margin of e...

  19. C

    Mean Travel Time to Work: Area Counties

    • data.ccrpc.org
    csv
    Updated Jan 31, 2025
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    Champaign County Regional Planning Commission (2025). Mean Travel Time to Work: Area Counties [Dataset]. https://data.ccrpc.org/dataset/mean-travel-time-to-work-counties
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    csvAvailable download formats
    Dataset updated
    Jan 31, 2025
    Dataset authored and provided by
    Champaign County Regional Planning Commission
    License

    Open Database License (ODbL) v1.0https://www.opendatacommons.org/licenses/odbl/1.0/
    License information was derived automatically

    Description

    Source: U.S. Census Bureau; American Community Survey, 2019-2023 American Community Survey 5-Year Estimates, Table S0801; generated by CCRPC staff; using data.census.gov; https://data.census.gov/cedsci/; (31 January 2025).

  20. F

    Mean Commuting Time for Workers (5-year estimate) in Cook County, IL

    • fred.stlouisfed.org
    json
    Updated Dec 12, 2024
    + more versions
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    (2024). Mean Commuting Time for Workers (5-year estimate) in Cook County, IL [Dataset]. https://fred.stlouisfed.org/series/B080ACS017031
    Explore at:
    jsonAvailable download formats
    Dataset updated
    Dec 12, 2024
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Area covered
    Cook County, Illinois
    Description

    Graph and download economic data for Mean Commuting Time for Workers (5-year estimate) in Cook County, IL (B080ACS017031) from 2009 to 2023 about Cook County, IL; commuting time; Chicago; IL; workers; average; 5-year; and USA.

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U.S. Census Bureau (2017). Average Commute Time by County [Dataset]. https://data.wu.ac.at/schema/public_opendatasoft_com/Y29tbXV0ZS10aW1lLXVzLWNvdW50aWVz
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Average Commute Time by County

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5 scholarly articles cite this dataset (View in Google Scholar)
csv, json, xls, application/vnd.geo+json, kmlAvailable download formats
Dataset updated
Aug 2, 2017
Dataset provided by
United States Census Bureauhttp://census.gov/
License

https://www.census.gov/data/developers/about/terms-of-service.htmlhttps://www.census.gov/data/developers/about/terms-of-service.html

Description

Average commute time in each U.S. county in minutes.

This product uses the Census Bureau Data API but is not endorsed or certified by the Census Bureau.

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