100+ datasets found
  1. c

    Crystal Roof | Ethnicity, Language and Religion API | Multiple ethnic group

    • crystalroof.co.uk
    json
    Updated Mar 21, 2021
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    CrystalRoof Ltd (2021). Crystal Roof | Ethnicity, Language and Religion API | Multiple ethnic group [Dataset]. https://crystalroof.co.uk/api-docs/method/ethnicity-language-and-religion-multiple-ethnic-group-postcode
    Explore at:
    jsonAvailable download formats
    Dataset updated
    Mar 21, 2021
    Dataset authored and provided by
    CrystalRoof Ltd
    License

    https://crystalroof.co.uk/api-terms-of-usehttps://crystalroof.co.uk/api-terms-of-use

    Area covered
    England, Wales
    Description

    This method returns Census 2021 estimates that classify households by the diversity in ethnic group of household members in different relationships.

    This dataset classifies households by whether members identify as having the same or different ethnic groups. If multiple ethnic groups are present, this identifies whether they differ between generations or partnerships within the household.

    Multiple ethnic groups in household are split into 6 categories including total.

    The estimates are as at Census Day, 21 March 2021.

  2. U

    Scotland's Census 2022 - UV201b - Ethnic group (19 Categories) by Age (6...

    • statistics.ukdataservice.ac.uk
    csv
    Updated Jun 6, 2024
    + more versions
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    National Records of Scotland (2024). Scotland's Census 2022 - UV201b - Ethnic group (19 Categories) by Age (6 categories) [Dataset]. https://statistics.ukdataservice.ac.uk/dataset/scotland-s-census-2022-uv201b-ethnic-group-19-categories-by-age-6-categories
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    csvAvailable download formats
    Dataset updated
    Jun 6, 2024
    Dataset authored and provided by
    National Records of Scotland
    License

    Open Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
    License information was derived automatically

    Area covered
    Scotland
    Description

    This dataset provides Census 2022 estimates for the Ethnic Group (in 19 categories) by age (in 6 categories) in Scotland.

    Age

    A person's age on Census Day, 20 March 2022. Infants aged under 1 year are classified as 0 years of age.

    Ethnic group

    Ethnic group classifies people according to their own perceived ethnic group and cultural background. Whilst the main ethnic group categories have not changed from the question asked in Census 2011, some of the detailed response options and write-in prompts for Scotland's Census 2022 were changed based on stakeholder engagement and subsequent question testing.

    Details of classification can be found here

    The quality assurance report can be found here

  3. N

    Fifty-Six, AR Population Breakdown By Race (Excluding Ethnicity) Dataset:...

    • neilsberg.com
    csv, json
    Updated Feb 21, 2025
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    Neilsberg Research (2025). Fifty-Six, AR Population Breakdown By Race (Excluding Ethnicity) Dataset: Population Counts and Percentages for 7 Racial Categories as Identified by the US Census Bureau // 2025 Edition [Dataset]. https://www.neilsberg.com/research/datasets/7570db54-ef82-11ef-9e71-3860777c1fe6/
    Explore at:
    json, csvAvailable download formats
    Dataset updated
    Feb 21, 2025
    Dataset authored and provided by
    Neilsberg Research
    License

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

    Area covered
    Fifty-Six, Arkansas
    Variables measured
    Asian Population, Black Population, White Population, Some other race Population, Two or more races Population, American Indian and Alaska Native Population, Asian Population as Percent of Total Population, Black Population as Percent of Total Population, White Population as Percent of Total Population, Native Hawaiian and Other Pacific Islander Population, and 4 more
    Measurement technique
    The data presented in this dataset is derived from the latest U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates. To measure the two variables, namely (a) population and (b) population as a percentage of the total population, we initially analyzed and categorized the data for each of the racial categories idetified by the US Census Bureau. It is ensured that the population estimates used in this dataset pertain exclusively to the identified racial categories, and do not rely on any ethnicity classification. For further information regarding these estimates, please feel free to reach out to us via email at research@neilsberg.com.
    Dataset funded by
    Neilsberg Research
    Description
    About this dataset

    Context

    The dataset tabulates the population of Fifty-Six by race. It includes the population of Fifty-Six across racial categories (excluding ethnicity) as identified by the Census Bureau. The dataset can be utilized to understand the population distribution of Fifty-Six across relevant racial categories.

    Key observations

    The percent distribution of Fifty-Six population by race (across all racial categories recognized by the U.S. Census Bureau): 97.18% are white, 0.56% are Asian and 2.26% are multiracial.

    Content

    When available, the data consists of estimates from the U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.

    Racial categories include:

    • White
    • Black or African American
    • American Indian and Alaska Native
    • Asian
    • Native Hawaiian and Other Pacific Islander
    • Some other race
    • Two or more races (multiracial)

    Variables / Data Columns

    • Race: This column displays the racial categories (excluding ethnicity) for the Fifty-Six
    • Population: The population of the racial category (excluding ethnicity) in the Fifty-Six is shown in this column.
    • % of Total Population: This column displays the percentage distribution of each race as a proportion of Fifty-Six total population. Please note that the sum of all percentages may not equal one due to rounding of values.

    Good to know

    Margin of Error

    Data in the dataset are based on the estimates and are subject to sampling variability and thus a margin of error. Neilsberg Research recommends using caution when presening these estimates in your research.

    Custom data

    If you do need custom data for any of your research project, report or presentation, you can contact our research staff at research@neilsberg.com for a feasibility of a custom tabulation on a fee-for-service basis.

    Inspiration

    Neilsberg Research Team curates, analyze and publishes demographics and economic data from a variety of public and proprietary sources, each of which often includes multiple surveys and programs. The large majority of Neilsberg Research aggregated datasets and insights is made available for free download at https://www.neilsberg.com/research/.

    Recommended for further research

    This dataset is a part of the main dataset for Fifty-Six Population by Race & Ethnicity. You can refer the same here

  4. Ethnic group in Scotland 2011

    • statistics.ukdataservice.ac.uk
    csv, zip
    Updated Sep 20, 2022
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    Office for National Statistics; National Records of Scotland; Northern Ireland Statistics and Research Agency; UK Data Service. (2022). Ethnic group in Scotland 2011 [Dataset]. https://statistics.ukdataservice.ac.uk/dataset/ethnic-group-scotland-2011
    Explore at:
    zip, csvAvailable download formats
    Dataset updated
    Sep 20, 2022
    Dataset provided by
    Office for National Statisticshttp://www.ons.gov.uk/
    Northern Ireland Statistics and Research Agency
    UK Data Servicehttps://ukdataservice.ac.uk/
    Authors
    Office for National Statistics; National Records of Scotland; Northern Ireland Statistics and Research Agency; UK Data Service.
    License

    Open Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
    License information was derived automatically

    Area covered
    Scotland
    Description

    Dataset population: Persons

    Ethnic group

    The Ethnicity question has 6 broad categories from which the user would select one and then pick a specific ethnicity within that category, or fill in the text box underneath whilst ticking the 'Other' box.

    Responses are assigned codes based on the ethnicity classification codes.

  5. f

    18-category ethnic breakdown per data source.

    • plos.figshare.com
    xls
    Updated Feb 26, 2025
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    Cameron Razieh; Bethan Powell; Rosemary Drummond; Isobel L. Ward; Jasper Morgan; Myer Glickman; Chris White; Francesco Zaccardi; Jonathan Hope; Veena Raleigh; Ashley Akbari; Nazrul Islam; Thomas Yates; Lisa Murphy; Bilal A. Mateen; Kamlesh Khunti; Vahe Nafilyan (2025). 18-category ethnic breakdown per data source. [Dataset]. http://doi.org/10.1371/journal.pmed.1004507.t001
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    xlsAvailable download formats
    Dataset updated
    Feb 26, 2025
    Dataset provided by
    PLOS Medicine
    Authors
    Cameron Razieh; Bethan Powell; Rosemary Drummond; Isobel L. Ward; Jasper Morgan; Myer Glickman; Chris White; Francesco Zaccardi; Jonathan Hope; Veena Raleigh; Ashley Akbari; Nazrul Islam; Thomas Yates; Lisa Murphy; Bilal A. Mateen; Kamlesh Khunti; Vahe Nafilyan
    License

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

    Description

    BackgroundElectronic health records (EHRs) are increasingly used to investigate health inequalities across ethnic groups. While there are some studies showing that the recording of ethnicity in EHR is imperfect, there is no robust evidence on the accuracy between the ethnicity information recorded in various real-world sources and census data.Methods and findingsWe linked primary and secondary care NHS England data sources with Census 2021 data and compared individual-level agreement of ethnicity recording in General Practice Extraction Service (GPES) Data for Pandemic Planning and Research (GDPPR), Hospital Episode Statistics (HES), Ethnic Category Information Asset (ECIA), and Talking Therapies for anxiety and depression (TT) with ethnicity reported in the census. Census ethnicity is self-reported and, therefore, regarded as the most reliable population-level source of ethnicity recording. We further assessed the impact of multiple approaches to assigning a person an ethnic category. The number of people that could be linked to census from ECIA, GDPPR, HES, and TT were 47.4m, 43.5m, 47.8m, and 6.3m, respectively. Across all 4 data sources, the White British category had the highest level of agreement with census (≥96%), followed by the Bangladeshi category (≥93%). Levels of agreement for Pakistani, Indian, and Chinese categories were ≥87%, ≥83%, and ≥80% across all sources. Agreement was lower for Mixed (≤75%) and Other (≤71%) categories across all data sources. The categories with the lowest agreement were Gypsy or Irish Traveller (≤6%), Other Black (≤19%), and Any Other Ethnic Group (≤25%) categories.ConclusionsCertain ethnic categories across all data sources have high discordance with census ethnic categories. These differences may lead to biased estimates of differences in health outcomes between ethnic groups, a critical data point used when making health policy and planning decisions.

  6. f

    Table_1_Ethnic and racial differences in self-reported symptoms, health...

    • datasetcatalog.nlm.nih.gov
    • frontiersin.figshare.com
    Updated Jan 30, 2024
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    Plumb, Ian D.; Zheng, Zihan; Stephens, Kari A.; L’Hommedieu, Michelle; Group, the INSPIRE; Koo, Katherine; Gottlieb, Michael; Chan, Kwun C. G.; Idris, Ahamed H.; Mannan, Imtiaz Ebna; Klabbers, Robin E.; Spatz, Erica S.; Li, Shu-Xia; Rising, Kristin L.; Hill, Mandy J.; Saydah, Sharon; Venkatesh, Arjun; Huebinger, Ryan M.; Geyer, Rachel E.; Hagen, Melissa; Santangelo, Michelle; Kelly, Morgan; Rodriguez, Robert M.; Weinstein, Robert A.; Yu, Huihui; Gentile, Nicole L.; O’Laughlin, Kelli N.; Nichol, Graham; Elmore, Joann G.; McDonald, Samuel; Wang, Ralph C. (2024). Table_1_Ethnic and racial differences in self-reported symptoms, health status, activity level, and missed work at 3 and 6 months following SARS-CoV-2 infection.docx [Dataset]. https://datasetcatalog.nlm.nih.gov/dataset?q=0001467277
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    Dataset updated
    Jan 30, 2024
    Authors
    Plumb, Ian D.; Zheng, Zihan; Stephens, Kari A.; L’Hommedieu, Michelle; Group, the INSPIRE; Koo, Katherine; Gottlieb, Michael; Chan, Kwun C. G.; Idris, Ahamed H.; Mannan, Imtiaz Ebna; Klabbers, Robin E.; Spatz, Erica S.; Li, Shu-Xia; Rising, Kristin L.; Hill, Mandy J.; Saydah, Sharon; Venkatesh, Arjun; Huebinger, Ryan M.; Geyer, Rachel E.; Hagen, Melissa; Santangelo, Michelle; Kelly, Morgan; Rodriguez, Robert M.; Weinstein, Robert A.; Yu, Huihui; Gentile, Nicole L.; O’Laughlin, Kelli N.; Nichol, Graham; Elmore, Joann G.; McDonald, Samuel; Wang, Ralph C.
    Description

    IntroductionData on ethnic and racial differences in symptoms and health-related impacts following SARS-CoV-2 infection are limited. We aimed to estimate the ethnic and racial differences in symptoms and health-related impacts 3 and 6 months after the first SARS-CoV-2 infection.MethodsParticipants included adults with SARS-CoV-2 infection enrolled in a prospective multicenter US study between 12/11/2020 and 7/4/2022 as the primary cohort of interest, as well as a SARS-CoV-2-negative cohort to account for non-SARS-CoV-2-infection impacts, who completed enrollment and 3-month surveys (N = 3,161; 2,402 SARS-CoV-2-positive, 759 SARS-CoV-2-negative). Marginal odds ratios were estimated using GEE logistic regression for individual symptoms, health status, activity level, and missed work 3 and 6 months after COVID-19 illness, comparing each ethnicity or race to the referent group (non-Hispanic or white), adjusting for demographic factors, social determinants of health, substance use, pre-existing health conditions, SARS-CoV-2 infection status, COVID-19 vaccination status, and survey time point, with interactions between ethnicity or race and time point, ethnicity or race and SARS-CoV-2 infection status, and SARS-CoV-2 infection status and time point.ResultsFollowing SARS-CoV-2 infection, the majority of symptoms were similar over time between ethnic and racial groups. At 3 months, Hispanic participants were more likely than non-Hispanic participants to report fair/poor health (OR: 1.94; 95%CI: 1.36–2.78) and reduced activity (somewhat less, OR: 1.47; 95%CI: 1.06–2.02; much less, OR: 2.23; 95%CI: 1.38–3.61). At 6 months, differences by ethnicity were not present. At 3 months, Other/Multiple race participants were more likely than white participants to report fair/poor health (OR: 1.90; 95% CI: 1.25–2.88), reduced activity (somewhat less, OR: 1.72; 95%CI: 1.21–2.46; much less, OR: 2.08; 95%CI: 1.18–3.65). At 6 months, Asian participants were more likely than white participants to report fair/poor health (OR: 1.88; 95%CI: 1.13–3.12); Black participants reported more missed work (OR, 2.83; 95%CI: 1.60–5.00); and Other/Multiple race participants reported more fair/poor health (OR: 1.83; 95%CI: 1.10–3.05), reduced activity (somewhat less, OR: 1.60; 95%CI: 1.02–2.51; much less, OR: 2.49; 95%CI: 1.40–4.44), and more missed work (OR: 2.25; 95%CI: 1.27–3.98).DiscussionAwareness of ethnic and racial differences in outcomes following SARS-CoV-2 infection may inform clinical and public health efforts to advance health equity in long-term outcomes.

  7. NCHS - Natality Measures for Females by Race and Hispanic Origin: United...

    • data.virginia.gov
    • datahub.hhs.gov
    • +7more
    csv, json, rdf, xsl
    Updated Apr 21, 2025
    + more versions
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    Centers for Disease Control and Prevention (2025). NCHS - Natality Measures for Females by Race and Hispanic Origin: United States [Dataset]. https://data.virginia.gov/dataset/nchs-natality-measures-for-females-by-race-and-hispanic-origin-united-states
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    rdf, xsl, csv, jsonAvailable download formats
    Dataset updated
    Apr 21, 2025
    Dataset provided by
    Centers for Disease Control and Preventionhttp://www.cdc.gov/
    Area covered
    United States
    Description

    This dataset includes live births, birth rates, and fertility rates by race of mother in the United States since 1960.

    Data availability varies by race and ethnicity groups. All birth data by race before 1980 are based on race of the child. Since 1980, birth data by race are based on race of the mother. For race, data are available for Black and White births since 1960, and for American Indians/Alaska Native and Asian/Pacific Islander births since 1980. Data on Hispanic origin are available since 1989. Teen birth rates for specific racial and ethnic categories are also available since 1989. From 2003 through 2015, the birth data by race were based on the “bridged” race categories (5). Starting in 2016, the race categories for reporting birth data changed; the new race and Hispanic origin categories are: Non-Hispanic, Single Race White; Non-Hispanic, Single Race Black; Non-Hispanic, Single Race American Indian/Alaska Native; Non-Hispanic, Single Race Asian; and, Non-Hispanic, Single Race Native Hawaiian/Pacific Islander (5,6). Birth data by the prior, “bridged” race (and Hispanic origin) categories are included through 2018 for comparison.

    SOURCES

    NCHS, National Vital Statistics System, birth data (see https://www.cdc.gov/nchs/births.htm); public-use data files (see https://www.cdc.gov/nchs/data_access/VitalStatsOnline.htm); and CDC WONDER (see http://wonder.cdc.gov/).

    REFERENCES

    1. National Office of Vital Statistics. Vital Statistics of the United States, 1950, Volume I. 1954. Available from: https://www.cdc.gov/nchs/data/vsus/vsus_1950_1.pdf.

    2. Hetzel AM. U.S. vital statistics system: major activities and developments, 1950-95. National Center for Health Statistics. 1997. Available from: https://www.cdc.gov/nchs/data/misc/usvss.pdf.

    3. National Center for Health Statistics. Vital Statistics of the United States, 1967, Volume I–Natality. 1969. Available from: https://www.cdc.gov/nchs/data/vsus/nat67_1.pdf.

    4. Martin JA, Hamilton BE, Osterman MJK, et al. Births: Final data for 2015. National vital statistics reports; vol 66 no 1. Hyattsville, MD: National Center for Health Statistics. 2017. Available from: https://www.cdc.gov/nchs/data/nvsr/nvsr66/nvsr66_01.pdf.

    5. Martin JA, Hamilton BE, Osterman MJK, Driscoll AK, Drake P. Births: Final data for 2016. National Vital Statistics Reports; vol 67 no 1. Hyattsville, MD: National Center for Health Statistics. 2018. Available from: https://www.cdc.gov/nvsr/nvsr67/nvsr67_01.pdf.

    6. Martin JA, Hamilton BE, Osterman MJK, Driscoll AK, Births: Final data for 2018. National vital statistics reports; vol 68 no 13. Hyattsville, MD: National Center for Health Statistics. 2019. Available from: https://www.cdc.gov/nchs/data/nvsr/nvsr68/nvsr68_13.pdf.

  8. T

    Small Area Demographic Estimates by Age, Sex, Race and Hispanic Origin

    • open.piercecountywa.gov
    • internal.open.piercecountywa.gov
    csv, xlsx, xml
    Updated Jan 12, 2021
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    Washington Sate Office of Financial Management, Forecasting and Research Division (2021). Small Area Demographic Estimates by Age, Sex, Race and Hispanic Origin [Dataset]. https://open.piercecountywa.gov/w/76qb-g4uk/default?cur=0IzkD8oINvp
    Explore at:
    xml, csv, xlsxAvailable download formats
    Dataset updated
    Jan 12, 2021
    Dataset authored and provided by
    Washington Sate Office of Financial Management, Forecasting and Research Division
    Description

    The race categories comply with the U.S. Office of Management and Budget 1997 revised standards for race and ethnicity data collection and reporting.

    Population is estimated for six race categories and two ethnic origin categories: Race: 1. White 2. Black or African American (Black) 3. American Indian or Alaska Native (AIAN) 4. Asian 5. Native Hawaiian or Other Pacific Islander (NHOPI) 6. Two or More Races Ethnic Origin: 1. Hispanic or Latino 2. Non-Hispanic or Latino

    A person of Hispanic or Latino origin can be of any race.

    The Total population is the Non-Hispanic plus the Hispanic population.

  9. England and Wales Census 2021 - TS023: Multiple Ethnic Group

    • statistics.ukdataservice.ac.uk
    csv, json, xlsx
    Updated Jun 10, 2024
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    Office for National Statistics; National Records of Scotland; Northern Ireland Statistics and Research Agency; UK Data Service. (2024). England and Wales Census 2021 - TS023: Multiple Ethnic Group [Dataset]. https://statistics.ukdataservice.ac.uk/dataset/england-and-wales-census-2021-ts023-multiple-ethnic-group
    Explore at:
    xlsx, json, csvAvailable download formats
    Dataset updated
    Jun 10, 2024
    Dataset provided by
    Office for National Statisticshttp://www.ons.gov.uk/
    Northern Ireland Statistics and Research Agency
    UK Data Servicehttps://ukdataservice.ac.uk/
    Authors
    Office for National Statistics; National Records of Scotland; Northern Ireland Statistics and Research Agency; UK Data Service.
    License

    Open Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
    License information was derived automatically

    Area covered
    Wales, England
    Description

    This dataset provides Census 2021 estimates that classify households in England and Wales by the diversity in ethnic group of household members in different relationships. The estimates are as at Census Day, 21 March 2021.

    Area type

    Census 2021 statistics are published for a number of different geographies. These can be large, for example the whole of England, or small, for example an output area (OA), the lowest level of geography for which statistics are produced.

    For higher levels of geography, more detailed statistics can be produced. When a lower level of geography is used, such as output areas (which have a minimum of 100 persons), the statistics produced have less detail. This is to protect the confidentiality of people and ensure that individuals or their characteristics cannot be identified.

    Coverage

    Census 2021 statistics are published for the whole of England and Wales. Data are also available in these geographic types:

    • country - for example, Wales
    • region - for example, London
    • local authority - for example, Cornwall
    • health area – for example, Clinical Commissioning Group
    • statistical area - for example, MSOA or LSOA

    Multiple ethnic groups in household (6 categories)

    Classifies households by whether members identify as having the same or different ethnic groups.

    If multiple ethnic groups are present, this identifies whether they differ between generations or partnerships within the household.

  10. d

    COVID-19 Cases and Deaths by Race/Ethnicity - ARCHIVE

    • catalog.data.gov
    • data.ct.gov
    Updated Aug 12, 2023
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    data.ct.gov (2023). COVID-19 Cases and Deaths by Race/Ethnicity - ARCHIVE [Dataset]. https://catalog.data.gov/dataset/covid-19-cases-and-deaths-by-race-ethnicity
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    Dataset updated
    Aug 12, 2023
    Dataset provided by
    data.ct.gov
    Description

    Note: DPH is updating and streamlining the COVID-19 cases, deaths, and testing data. As of 6/27/2022, the data will be published in four tables instead of twelve. The COVID-19 Cases, Deaths, and Tests by Day dataset contains cases and test data by date of sample submission. The death data are by date of death. This dataset is updated daily and contains information back to the beginning of the pandemic. The data can be found at https://data.ct.gov/Health-and-Human-Services/COVID-19-Cases-Deaths-and-Tests-by-Day/g9vi-2ahj. The COVID-19 State Metrics dataset contains over 93 columns of data. This dataset is updated daily and currently contains information starting June 21, 2022 to the present. The data can be found at https://data.ct.gov/Health-and-Human-Services/COVID-19-State-Level-Data/qmgw-5kp6 . The COVID-19 County Metrics dataset contains 25 columns of data. This dataset is updated daily and currently contains information starting June 16, 2022 to the present. The data can be found at https://data.ct.gov/Health-and-Human-Services/COVID-19-County-Level-Data/ujiq-dy22 . The COVID-19 Town Metrics dataset contains 16 columns of data. This dataset is updated daily and currently contains information starting June 16, 2022 to the present. The data can be found at https://data.ct.gov/Health-and-Human-Services/COVID-19-Town-Level-Data/icxw-cada . To protect confidentiality, if a town has fewer than 5 cases or positive NAAT tests over the past 7 days, those data will be suppressed. COVID-19 cases and associated deaths that have been reported among Connecticut residents, broken down by race and ethnicity. All data in this report are preliminary; data for previous dates will be updated as new reports are received and data errors are corrected. Deaths reported to the either the Office of the Chief Medical Examiner (OCME) or Department of Public Health (DPH) are included in the COVID-19 update. The following data show the number of COVID-19 cases and associated deaths per 100,000 population by race and ethnicity. Crude rates represent the total cases or deaths per 100,000 people. Age-adjusted rates consider the age of the person at diagnosis or death when estimating the rate and use a standardized population to provide a fair comparison between population groups with different age distributions. Age-adjustment is important in Connecticut as the median age of among the non-Hispanic white population is 47 years, whereas it is 34 years among non-Hispanic blacks, and 29 years among Hispanics. Because most non-Hispanic white residents who died were over 75 years of age, the age-adjusted rates are lower than the unadjusted rates. In contrast, Hispanic residents who died tend to be younger than 75 years of age which results in higher age-adjusted rates. The population data used to calculate rates is based on the CT DPH population statistics for 2019, which is available online here: https://portal.ct.gov/DPH/Health-Information-Systems--Reporting/Population/Population-Statistics. Prior to 5/10/2021, the population estimates from 2018 were used. Rates are standardized to the 2000 US Millions Standard population (data available here: https://seer.cancer.gov/stdpopulations/). Standardization was done using 19 age groups (0, 1-4, 5-9, 10-14, ..., 80-84, 85 years and older). More information about direct standardization for age adjustment is available here: https://www.cdc.gov/nchs/data/statnt/statnt06rv.pdf Categories are mutually exclusive. The category “multiracial” includes people who answered ‘yes’ to more than one race category. Counts may not add up to total case counts as data on race and ethnicity may be missing. Age adjusted rates calculated only for groups with more than 20 deaths. Abbreviation: NH=Non-Hispanic. Data on Connecticut deaths were obtained from the Connecticut Deaths Registry maintained by the DPH Office of Vital Records. Cause of death was determined by a death certifier (e.g., physician, APRN, medical

  11. N

    Ninety Six, SC Population Breakdown By Race (Excluding Ethnicity) Dataset:...

    • neilsberg.com
    csv, json
    Updated Feb 21, 2025
    + more versions
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    Neilsberg Research (2025). Ninety Six, SC Population Breakdown By Race (Excluding Ethnicity) Dataset: Population Counts and Percentages for 7 Racial Categories as Identified by the US Census Bureau // 2025 Edition [Dataset]. https://www.neilsberg.com/research/datasets/758a6bce-ef82-11ef-9e71-3860777c1fe6/
    Explore at:
    csv, jsonAvailable download formats
    Dataset updated
    Feb 21, 2025
    Dataset authored and provided by
    Neilsberg Research
    License

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

    Area covered
    Ninety Six, South Carolina
    Variables measured
    Asian Population, Black Population, White Population, Some other race Population, Two or more races Population, American Indian and Alaska Native Population, Asian Population as Percent of Total Population, Black Population as Percent of Total Population, White Population as Percent of Total Population, Native Hawaiian and Other Pacific Islander Population, and 4 more
    Measurement technique
    The data presented in this dataset is derived from the latest U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates. To measure the two variables, namely (a) population and (b) population as a percentage of the total population, we initially analyzed and categorized the data for each of the racial categories idetified by the US Census Bureau. It is ensured that the population estimates used in this dataset pertain exclusively to the identified racial categories, and do not rely on any ethnicity classification. For further information regarding these estimates, please feel free to reach out to us via email at research@neilsberg.com.
    Dataset funded by
    Neilsberg Research
    Description
    About this dataset

    Context

    The dataset tabulates the population of Ninety Six by race. It includes the population of Ninety Six across racial categories (excluding ethnicity) as identified by the Census Bureau. The dataset can be utilized to understand the population distribution of Ninety Six across relevant racial categories.

    Key observations

    The percent distribution of Ninety Six population by race (across all racial categories recognized by the U.S. Census Bureau): 78.86% are white, 17.46% are Black or African American and 3.68% are multiracial.

    Content

    When available, the data consists of estimates from the U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.

    Racial categories include:

    • White
    • Black or African American
    • American Indian and Alaska Native
    • Asian
    • Native Hawaiian and Other Pacific Islander
    • Some other race
    • Two or more races (multiracial)

    Variables / Data Columns

    • Race: This column displays the racial categories (excluding ethnicity) for the Ninety Six
    • Population: The population of the racial category (excluding ethnicity) in the Ninety Six is shown in this column.
    • % of Total Population: This column displays the percentage distribution of each race as a proportion of Ninety Six total population. Please note that the sum of all percentages may not equal one due to rounding of values.

    Good to know

    Margin of Error

    Data in the dataset are based on the estimates and are subject to sampling variability and thus a margin of error. Neilsberg Research recommends using caution when presening these estimates in your research.

    Custom data

    If you do need custom data for any of your research project, report or presentation, you can contact our research staff at research@neilsberg.com for a feasibility of a custom tabulation on a fee-for-service basis.

    Inspiration

    Neilsberg Research Team curates, analyze and publishes demographics and economic data from a variety of public and proprietary sources, each of which often includes multiple surveys and programs. The large majority of Neilsberg Research aggregated datasets and insights is made available for free download at https://www.neilsberg.com/research/.

    Recommended for further research

    This dataset is a part of the main dataset for Ninety Six Population by Race & Ethnicity. You can refer the same here

  12. V

    200607 Division Totals by Ethnicity

    • data.virginia.gov
    • opendata.winchesterva.gov
    xlsx
    Updated Jul 21, 2025
    + more versions
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    Department of Education (2025). 200607 Division Totals by Ethnicity [Dataset]. https://data.virginia.gov/dataset/200607-division-totals-by-ethnicity
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    xlsx(53760)Available download formats
    Dataset updated
    Jul 21, 2025
    Dataset authored and provided by
    Department of Education
    Description

    Background:

    Each year, the Virginia Department of Education collects statistics on the number of students enrolled in public school on September 30th. This report is submitted by each school in Virginia which officially enrolls students (i.e. student records are maintained on a Virginia Teacher's Register or automated system). Student counts are reported by grade assignment and ethnicity. Excluded from the September 30 count are Special education preschool pupils, pupils in hospitals, clinics or detention homes, and local programs such as vocational and alternative education centers (i.e., centers or schools which receive, but do not officially enroll students).

    Definitions:

    The six racial/ethnic categories are as follows:

    American Indian or Alaskan native - a person having origins (ancestry) in any of the original peoples of North America, who maintains cultural identification through tribal affiliation or community recognition.

    Asian or Pacific Islander - a person having origins (ancestry) in any of the original peoples of the Far East, Southeast Asian, the Pacific Islands, or the Indian subcontinent. Included, for example, are peoples of China, Korea, the Philippine Islands, Samoa, and India.

    Black, not of Hispanic origin - a person having origins (ancestry) in any of the black racial groups of Africa.

    Hispanic - a person of Mexican, Puerto Rican, Cuban, Central or South American, or other Spanish culture or origin (ancestry), regardless of race.

    White, not of Hispanic origin - a person having origins (ancestry) in any of the original peoples of Europe, North Africa, or the Middle East.

    Native Hawaiian/Other Pacific Islander- A person having origins in any of the original peoples of Hawaii, Guam, Samoa, or other Pacific Islands.

    Unspecified - a person who cannot be classified according to the definitions of any of the six racial/ethnic categories.

    The following abbreviations are used in the Fall Membership reports:

    PK - Pre-Kindergarten JK - Junior Kindergarten KG - Kindergarten T1 - Transitional First Grade PG - Post Graduate

    (Revised 11/28/2006)

  13. Race and ethnicity of the national Medicaid and CHIP population

    • res1catalogd-o-tdatad-o-tgov.vcapture.xyz
    • data.virginia.gov
    • +2more
    Updated Jul 11, 2025
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    Centers for Medicare & Medicaid Services (2025). Race and ethnicity of the national Medicaid and CHIP population [Dataset]. https://res1catalogd-o-tdatad-o-tgov.vcapture.xyz/dataset/race-and-ethnicity-of-the-national-medicaid-and-chip-population
    Explore at:
    Dataset updated
    Jul 11, 2025
    Dataset provided by
    Centers for Medicare & Medicaid Services
    Description

    This data set includes annual counts and percentages of Medicaid and Children’s Health Insurance Program (CHIP) enrollees by race and ethnicity overall and by three subpopulation topics: scope of Medicaid and CHIP benefits, age group, and eligibility category. These results were generated using Transformed Medicaid Statistical Information System (T-MSIS) Analytic Files (TAF) Release 1 data and the Race/Ethnicity Imputation Companion File. This data set includes Medicaid and CHIP enrollees in all 50 states, the District of Columbia, and Puerto Rico who were enrolled for at least one day in the calendar year. Enrollees in Guam, American Samoa, the Northern Mariana Islands, and the U.S. Virgin Islands are not included. Results shown for the age group and eligibility category subpopulation topics only include enrollees with comprehensive Medicaid and CHIP benefits in the year. Some rows in the data set have a value of "DS," which indicates that data were suppressed according to the Centers for Medicare & Medicaid Services’ Cell Suppression Policy for values between 1 and 10. This data set is based on information shown in the brief: "Race and ethnicity of the national Medicaid and CHIP population in 2020." Enrollees are assigned to six race and ethnicity categories using the state-reported race and ethnicity information in TAF when it is available and of good quality; if it is missing or unreliable, race and ethnicity is indirectly estimated using an enhanced version of Bayesian Improved Surname Geocoding (BISG). Enrollees are assigned to a child (ages 0-18) or adult (ages 19 and older) subpopulation using age as of December 31st of the calendar year. Enrollees are assigned to the comprehensive benefits or limited benefits subpopulation according to the criteria in the "Identifying Beneficiaries with Full-Scope, Comprehensive, and Limited Benefits in the TAF" DQ Atlas brief. Enrollees are assigned to an eligibility category subpopulation using their latest reported eligibility group code, CHIP code, and age in the calendar year. Please refer to the full brief for additional context about the methodology and detailed findings. Future updates to this data set will include more recent data years as the TAF data become available.

  14. NCHS - Teen Birth Rates for Females by Age Group, Race, and Hispanic Origin:...

    • odgavaprod.ogopendata.com
    • healthdata.gov
    • +5more
    csv, json, rdf, xsl
    Updated Apr 21, 2025
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    Centers for Disease Control and Prevention (2025). NCHS - Teen Birth Rates for Females by Age Group, Race, and Hispanic Origin: United States [Dataset]. https://odgavaprod.ogopendata.com/dataset/nchs-teen-birth-rates-for-females-by-age-group-race-and-hispanic-origin-united-states
    Explore at:
    json, csv, rdf, xslAvailable download formats
    Dataset updated
    Apr 21, 2025
    Dataset provided by
    Centers for Disease Control and Preventionhttp://www.cdc.gov/
    Area covered
    United States
    Description

    This dataset includes teen birth rates for females by age group, race, and Hispanic origin in the United States since 1960.

    Data availability varies by race and ethnicity groups. All birth data by race before 1980 are based on race of the child. Since 1980, birth data by race are based on race of the mother. For race, data are available for Black and White births since 1960, and for American Indians/Alaska Native and Asian/Pacific Islander births since 1980. Data on Hispanic origin are available since 1989. Teen birth rates for specific racial and ethnic categories are also available since 1989. From 2003 through 2015, the birth data by race were based on the “bridged” race categories (5). Starting in 2016, the race categories for reporting birth data changed; the new race and Hispanic origin categories are: Non-Hispanic, Single Race White; Non-Hispanic, Single Race Black; Non-Hispanic, Single Race American Indian/Alaska Native; Non-Hispanic, Single Race Asian; and, Non-Hispanic, Single Race Native Hawaiian/Pacific Islander (5,6). Birth data by the prior, “bridged” race (and Hispanic origin) categories are included through 2018 for comparison.

    National data on births by Hispanic origin exclude data for Louisiana, New Hampshire, and Oklahoma in 1989; New Hampshire and Oklahoma in 1990; and New Hampshire in 1991 and 1992. Birth and fertility rates for the Central and South American population includes other and unknown Hispanic. Information on reporting Hispanic origin is detailed in the Technical Appendix for the 1999 public-use natality data file (see ftp://ftp.cdc.gov/pub/Health_Statistics/NCHS/Dataset_Documentation/DVS/natality/Nat1999doc.pdf).

  15. U.S. distribution of race and ethnicity among the military 2019

    • statista.com
    Updated Jan 24, 2025
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    Statista (2025). U.S. distribution of race and ethnicity among the military 2019 [Dataset]. https://www.statista.com/statistics/214869/share-of-active-duty-enlisted-women-and-men-in-the-us-military/
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    Dataset updated
    Jan 24, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    United States
    Description

    In the fiscal year of 2019, 21.39 percent of active-duty enlisted women were of Hispanic origin. The total number of active duty military personnel in 2019 amounted to 1.3 million people.

    Ethnicities in the United States The United States is known around the world for the diversity of its population. The Census recognizes six different racial and ethnic categories: White American, Native American and Alaska Native, Asian American, Black or African American, Native Hawaiian and Other Pacific Islander. People of Hispanic or Latino origin are classified as a racially diverse ethnicity.

    The largest part of the population, about 61.3 percent, is composed of White Americans. The largest minority in the country are Hispanics with a share of 17.8 percent of the population, followed by Black or African Americans with 13.3 percent. Life in the U.S. and ethnicity However, life in the United States seems to be rather different depending on the race or ethnicity that you belong to. For instance: In 2019, native Hawaiians and other Pacific Islanders had the highest birth rate of 58 per 1,000 women, while the birth rae of white alone, non Hispanic women was 49 children per 1,000 women.

    The Black population living in the United States has the highest poverty rate with of all Census races and ethnicities in the United States. About 19.5 percent of the Black population was living with an income lower than the 2020 poverty threshold. The Asian population has the smallest poverty rate in the United States, with about 8.1 percent living in poverty.

    The median annual family income in the United States in 2020 earned by Black families was about 57,476 U.S. dollars, while the average family income earned by the Asian population was about 109,448 U.S. dollars. This is more than 25,000 U.S. dollars higher than the U.S. average family income, which was 84,008 U.S. dollars.

  16. U.S. household income percentage distribution 2023, by race and ethnicity

    • statista.com
    Updated Sep 16, 2024
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    Statista (2024). U.S. household income percentage distribution 2023, by race and ethnicity [Dataset]. https://www.statista.com/statistics/203207/percentage-distribution-of-household-income-in-the-us-by-ethnic-group/
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    Dataset updated
    Sep 16, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2023
    Area covered
    United States
    Description

    In 2023, about 26.9 percent of Asian private households in the U.S. had an annual income of 200,000 U.S. dollars and more. Comparatively, around 13.9 percent of Black households had an annual income under 15,000 U.S. dollars.

  17. s

    Data from: Regional ethnic diversity

    • ethnicity-facts-figures.service.gov.uk
    csv
    Updated Dec 22, 2022
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    Race Disparity Unit (2022). Regional ethnic diversity [Dataset]. https://www.ethnicity-facts-figures.service.gov.uk/uk-population-by-ethnicity/national-and-regional-populations/regional-ethnic-diversity/latest
    Explore at:
    csv(1 MB), csv(47 KB)Available download formats
    Dataset updated
    Dec 22, 2022
    Dataset authored and provided by
    Race Disparity Unit
    License

    Open Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
    License information was derived automatically

    Area covered
    England
    Description

    According to the 2021 Census, London was the most ethnically diverse region in England and Wales – 63.2% of residents identified with an ethnic minority group.

  18. 2020 Decennial Census: T03003 | HOUSEHOLD TYPE (6 CATEGORIES) (DEC Detailed...

    • data.census.gov
    Updated Jun 1, 2025
    + more versions
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    DEC (2025). 2020 Decennial Census: T03003 | HOUSEHOLD TYPE (6 CATEGORIES) (DEC Detailed Demographic and Housing Characteristics File B) [Dataset]. https://data.census.gov/table/DECENNIALDDHCB2020.T03003?q=ab1800tcb%10b
    Explore at:
    Dataset updated
    Jun 1, 2025
    Dataset provided by
    United States Census Bureauhttp://census.gov/
    Authors
    DEC
    License

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

    Time period covered
    2020
    Description

    Note: For information on data collection, confidentiality protection, nonsampling error, subject definitions, and guidance on using the data, access the 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B) Technical Documentation..The Hispanic origin and race codes were updated in 2020. For more information on the Hispanic origin and race code changes, access Improvements to the 2020 Census Race and Hispanic Origin Question Designs, Data Processing, and Coding Procedures..To protect respondent confidentiality, data have undergone disclosure avoidance methods which add "statistical noise" - small, random additions or subtractions - to the data so that no one can reliably link the published data to a specific person or household. As a result, data users may observe implausible and improbable data within this data product and compared with other 2020 Census data products. For more information, access the 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B) Technical Documentation..Aggregating data, such as household counts and geographies, diminishes accuracy and increases the likelihood of inconsistent and improbable results. For guidance on creating custom aggregations, access the 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B) Technical Documentation..Counts showing an "X" are suppressed for one of two reasons: (1) the count was negative or (2) it is an alone count larger than its equivalent alone or in any combination count. If the suppressed count is an alone count, data users should use the equivalent alone in any combination count, if it is available..This racial or ethnic group has data available for six household type categories. More detailed household type data are not available due to minimum population counts not being met. For more information on the minimum population counts and accuracy, access the 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B) Technical Documentation..Washington, D.C. and American Indian/Alaska Native/Native Hawaiian (AIANNH) areas may show data when there should not be any displayed. This is due to postprocessing to ensure counts for statistically equivalent and coterminous geographies are consistent. For more information, access the 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B) Technical Documentation..Source: U.S. Census Bureau, 2020 Census Detailed Demographic and Housing Characteristics File B (Detailed DHC-B)

  19. g

    Race and ethnicity of the national Medicaid and CHIP population | gimi9.com

    • gimi9.com
    Updated Jan 17, 2025
    + more versions
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    (2025). Race and ethnicity of the national Medicaid and CHIP population | gimi9.com [Dataset]. https://gimi9.com/dataset/data-gov_race-and-ethnicity-of-the-national-medicaid-and-chip-population
    Explore at:
    Dataset updated
    Jan 17, 2025
    License

    U.S. Government Workshttps://www.usa.gov/government-works
    License information was derived automatically

    Description

    This data set includes annual counts and percentages of Medicaid and Children’s Health Insurance Program (CHIP) enrollees by race and ethnicity overall and by three subpopulation topics: scope of Medicaid and CHIP benefits, age group, and eligibility category. These results were generated using Transformed Medicaid Statistical Information System (T-MSIS) Analytic Files (TAF) Release 1 data and the Race/Ethnicity Imputation Companion File. This data set includes Medicaid and CHIP enrollees in all 50 states, the District of Columbia, and Puerto Rico who were enrolled for at least one day in the calendar year. Enrollees in Guam, American Samoa, the Northern Mariana Islands, and the U.S. Virgin Islands are not included. Results shown for the age group and eligibility category subpopulation topics only include enrollees with comprehensive Medicaid and CHIP benefits in the year. Some rows in the data set have a value of "DS," which indicates that data were suppressed according to the Centers for Medicare & Medicaid Services’ Cell Suppression Policy for values between 1 and 10. This data set is based on information shown in the brief: "Race and ethnicity of the national Medicaid and CHIP population in 2020." Enrollees are assigned to six race and ethnicity categories using the state-reported race and ethnicity information in TAF when it is available and of good quality; if it is missing or unreliable, race and ethnicity is indirectly estimated using an enhanced version of Bayesian Improved Surname Geocoding (BISG). Enrollees are assigned to a child (ages 0-18) or adult (ages 19 and older) subpopulation using age as of December 31st of the calendar year. Enrollees are assigned to the comprehensive benefits or limited benefits subpopulation according to the criteria in the "Identifying Beneficiaries with Full-Scope, Comprehensive, and Limited Benefits in the TAF" DQ Atlas brief. Enrollees are assigned to an eligibility category subpopulation using their latest reported eligibility group code, CHIP code, and age in the calendar year. Please refer to the full brief for additional context about the methodology and detailed findings. Future updates to this data set will include more recent data years as the TAF data become available.

  20. Integrated Postsecondary Education Data System (IPEDS): Fall Enrollment,...

    • archive.ciser.cornell.edu
    • icpsr.umich.edu
    Updated Feb 18, 2024
    + more versions
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    National Center for Education Statistics (2024). Integrated Postsecondary Education Data System (IPEDS): Fall Enrollment, 1996-1997 [Dataset]. http://doi.org/10.6077/6gmx-7k58
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    Dataset updated
    Feb 18, 2024
    Dataset authored and provided by
    National Center for Education Statisticshttps://nces.ed.gov/
    Variables measured
    Organization
    Description

    The purpose of this data collection was to provide a more accurate measure of the racial/ethnic enrollment in postsecondary institutions in the United States than was previously available. The National Center for Education Statistics (NCES) collects racial/ethnic enrollment data from higher education institutions on an annual basis. Some institutions do not report these data, and their "unknown" categories have previously been distributed in direct proportion to the "knowns." This resulted in lower than accurate figures for the racial/ethnic categories. With the advent of the Integrated Postsecondary Education Data System (IPEDS), NCES has attempted to eliminate this problem by distributing all "race/ethnicity unknown" students through a two-stage process. First, the differences between reported totals and racial/ethnic details were allocated on a gender and institutional basis by distributing the differences in direct proportion to reported distributions. The second-stage distribution was designed to eliminate the remaining instances of "race/ethnicity unknown." The procedure was to accumulate the reported racial/ethnic total enrollments by state, level, control, and gender, calculate the percentage distributions, and apply these percentages to the reported total enrollments of institutional respondents (in the same state, level, and control) that did not supply race/ethnicity detail. In addition, the original "race/ethnicity unknown" data were also left unaltered for those who wish to review the numbers actually distributed. The racial/ethnic status was broken down into nonresident alien, Black non-Hispanic, American Indian or Alaskan Native, Asian or Pacific Islander, Hispanic, and White non-Hispanic. There are six data files. Part 1, Institutional Characteristics, includes variables on control and level of institution, religious affiliation, highest level of offering, Carnegie classification, and state FIPS code and abbreviation. Variables in Part 2 cover total original enrollment by race/ethnicity and sex and by level and year of study of student. Race/ethnicity data were not imputed for institutions that only reported total enrollment. The "race ethnicity unknown" category was not distributed among the race/ethnicity categories. In Part 3, enrollment data are presented by race/ethnicity and sex of student, and by level and year of study for the following selected major field of studies: architecture, education, engineering, law, biological/life sciences, mathematics, physical sciences, dentistry, medicine, veterinary medicine, and business management and administrative services. This file contains data for four-year institutions only. Part 4 provides summary enrollment data by adjusted race/ethnicity and sex of student and by level and year of study of student. The "race/ethnicity unknown" category data were distributed across all known race categories in this file. Also, race data were imputed for institutions that did not report enrollment by race. Part 5, Residence and Migration, contains enrollment data for first-time freshmen, by state of residence. Part 6, Clarifying Questions on Enrollments, provides information on students enrolled in remedial courses, extension divisions, and branches of schools, and numbers of transfer students from in-state, out of state, and other countries. (Source: downloaded from ICPSR 7/13/10)

    Please Note: This dataset is part of the historical CISER Data Archive Collection and is also available at ICPSR at https://doi.org/10.3886/ICPSR02447.v1. We highly recommend using the ICPSR version as they may make this dataset available in multiple data formats in the future.

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CrystalRoof Ltd (2021). Crystal Roof | Ethnicity, Language and Religion API | Multiple ethnic group [Dataset]. https://crystalroof.co.uk/api-docs/method/ethnicity-language-and-religion-multiple-ethnic-group-postcode

Crystal Roof | Ethnicity, Language and Religion API | Multiple ethnic group

Multiple ethnic group

ethnicity-language-and-religion-multiple-ethnic-group-postcode

Explore at:
jsonAvailable download formats
Dataset updated
Mar 21, 2021
Dataset authored and provided by
CrystalRoof Ltd
License

https://crystalroof.co.uk/api-terms-of-usehttps://crystalroof.co.uk/api-terms-of-use

Area covered
England, Wales
Description

This method returns Census 2021 estimates that classify households by the diversity in ethnic group of household members in different relationships.

This dataset classifies households by whether members identify as having the same or different ethnic groups. If multiple ethnic groups are present, this identifies whether they differ between generations or partnerships within the household.

Multiple ethnic groups in household are split into 6 categories including total.

The estimates are as at Census Day, 21 March 2021.

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