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TwitterHydrographic and Impairment Statistics (HIS) is a National Park Service (NPS) Water Resources Division (WRD) project established to track certain goals created in response to the Government Performance and Results Act of 1993 (GPRA). One water resources management goal established by the Department of the Interior under GRPA requires NPS to track the percent of its managed surface waters that are meeting Clean Water Act (CWA) water quality standards. This goal requires an accurate inventory that spatially quantifies the surface water hydrography that each bureau manages and a procedure to determine and track which waterbodies are or are not meeting water quality standards as outlined by Section 303(d) of the CWA. This project helps meet this DOI GRPA goal by inventorying and monitoring in a geographic information system for the NPS: (1) CWA 303(d) quality impaired waters and causes; and (2) hydrographic statistics based on the United States Geological Survey (USGS) National Hydrography Dataset (NHD). Hydrographic and 303(d) impairment statistics were evaluated based on a combination of 1:24,000 (NHD) and finer scale data (frequently provided by state GIS layers).
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TwitterAttribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
License information was derived automatically
Context
The dataset tabulates the population of Troy by gender, including both male and female populations. This dataset can be utilized to understand the population distribution of Troy across both sexes and to determine which sex constitutes the majority.
Key observations
There is a majority of female population, with 59.37% of total population being female. Source: U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.
When available, the data consists of estimates from the U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.
Scope of gender :
Please note that American Community Survey asks a question about the respondents current sex, but not about gender, sexual orientation, or sex at birth. The question is intended to capture data for biological sex, not gender. Respondents are supposed to respond with the answer as either of Male or Female. Our research and this dataset mirrors the data reported as Male and Female for gender distribution analysis. No further analysis is done on the data reported from the Census Bureau.
Variables / Data Columns
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.
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/.
This dataset is a part of the main dataset for Troy Population by Race & Ethnicity. You can refer the same here
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TwitterHydrographic and Impairment Statistics (HIS) is a National Park Service (NPS) Water Resources Division (WRD) project established to track certain goals created in response to the Government Performance and Results Act of 1993 (GPRA). One water resources management goal established by the Department of the Interior under GRPA requires NPS to track the percent of its managed surface waters that are meeting Clean Water Act (CWA) water quality standards. This goal requires an accurate inventory that spatially quantifies the surface water hydrography that each bureau manages and a procedure to determine and track which waterbodies are or are not meeting water quality standards as outlined by Section 303(d) of the CWA. This project helps meet this DOI GRPA goal by inventorying and monitoring in a geographic information system for the NPS: (1) CWA 303(d) quality impaired waters and causes; and (2) hydrographic statistics based on the United States Geological Survey (USGS) National Hydrography Dataset (NHD). Hydrographic and 303(d) impairment statistics were evaluated based on a combination of 1:24,000 (NHD) and finer scale data (frequently provided by state GIS layers).
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TwitterApache License, v2.0https://www.apache.org/licenses/LICENSE-2.0
License information was derived automatically
This dataset was created by Sandeep Chatterjee
Released under Apache 2.0
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TwitterTSGB1101 (CW0301): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821811/CW0301.ods" class="govuk-link">Proportion of adults who do any walking or cycling, for any purpose, by frequency and local authority, England (ODS)
TSGB1111 (CW0302): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821812/CW0302.ods" class="govuk-link">Proportion of adults that cycle, by frequency, purpose and local authority, England (ODS)
TSGB1112 (CW0303): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821813/CW0303.ods" class="govuk-link">Proportion of adults that walk, by frequency, purpose and local authority, England (ODS)
TSGB1122 (CW0305): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821815/CW0305.ods" class="govuk-link">Proportion of adults that walk or cycle, by frequency, purpose and demographic, England (ODS)
TSGB1105 (NTS0608): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821464/nts0608.ods" class="govuk-link">Bicycle ownership by age (ODS)
TSGB1107 (NTS0601): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821431/nts0601.ods" class="govuk-link">Average distance travelled by age, gender and mode (ODS)
TSGB1109 (NTS0303): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821414/nts0303.ods" class="govuk-link">Average number of trips, stages, miles and time spent travelling by main mode: England (ODS)
TSGB1113 (NTS0601): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821431/nts0601.ods" class="govuk-link">Average number of trips (trip rates) by age, gender and main mode (ODS)
TSGB1108 (NTS0613): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/821476/nts0613.ods" class="govuk-link">Trips to and from school per child per year by main mode (ODS)
TSGB1110 (RAS30001): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/1021664/ras30001.ods" class="govuk-link">Reported road casualties by road user type and severity (ODS)
TSGB1119 (RAS20001): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/1021655/ras20001.ods" class="govuk-link">Vehicles involved in reported accidents and involvement rates by vehicle type and severity of accident (ODS)
TSGB1121 (RAS52001): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/1021707/ras52001.ods" class="govuk-link">International comparisons of road deaths, number and rates for different road users by selected countries (ODS)
TSGB1118 (JTS0101): https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/848552/jts0101.ods" class="govuk-link">Average minimum travel time to reach the nearest key services by mode of travel (ODS)
TSGB1120: https://assets.publishing.service.gov.uk/media/5fda5ffa8fa8f54d6545db2b/tsgb1120.ods">"It is too dangerous for me to cycle on the roads", respondents aged 18+: England (ODS, 8.15 KB)
Walking and cycling statistics
Email mailto:activetravel.stats@dft.gov.uk">activetravel.stats@dft.gov.uk
Media enquiries 0300 7777 878
Road safety statistics
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TwitterHydrographic and Impairment Statistics (HIS) is a National Park Service (NPS) Water Resources Division (WRD) project established to track certain goals created in response to the Government Performance and Results Act of 1993 (GPRA). One water resources management goal established by the Department of the Interior under GRPA requires NPS to track the percent of its managed surface waters that are meeting Clean Water Act (CWA) water quality standards. This goal requires an accurate inventory that spatially quantifies the surface water hydrography that each bureau manages and a procedure to determine and track which waterbodies are or are not meeting water quality standards as outlined by Section 303(d) of the CWA. This project helps meet this DOI GRPA goal by inventorying and monitoring in a geographic information system for the NPS: (1) CWA 303(d) quality impaired waters and causes; and (2) hydrographic statistics based on the United States Geological Survey (USGS) National Hydrography Dataset (NHD). Hydrographic and 303(d) impairment statistics were evaluated based on a combination of 1:24,000 (NHD) and finer scale data (frequently provided by state GIS layers).
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TwitterThe Home Office has changed the format of the published data tables for a number of areas (asylum and resettlement, entry clearance visas, extensions, citizenship, returns, detention, and sponsorship). These now include summary tables, and more detailed datasets (available on a separate page, link below). A list of all available datasets on a given topic can be found in the ‘Contents’ sheet in the ‘summary’ tables. Information on where to find historic data in the ‘old’ format is in the ‘Notes’ page of the ‘summary’ tables. The Home Office intends to make these changes in other areas in the coming publications. If you have any feedback, please email MigrationStatsEnquiries@homeoffice.gov.uk.
Immigration statistics, year ending March 2020
Immigration Statistics Quarterly Release
Immigration Statistics User Guide
Publishing detailed data tables in migration statistics
Policy and legislative changes affecting migration to the UK: timeline
Immigration statistics data archives
https://assets.publishing.service.gov.uk/media/5f1e9c14e90e0745691135e9/asylum-summary-mar-2020-tables.xlsx">Asylum and resettlement summary tables, year ending March 2020 second edition (MS Excel Spreadsheet, 123 KB)
Detailed asylum and resettlement datasets
https://assets.publishing.service.gov.uk/media/5ebe9d9786650c2791ec7166/sponsorship-summary-mar-2020-tables.xlsx">Sponsorship summary tables, year ending March 2020 (MS Excel Spreadsheet, 72.7 KB)
https://assets.publishing.service.gov.uk/media/5ebe9d77d3bf7f5d37fa0d9f/visas-summary-mar-2020-tables.xlsx">Entry clearance visas summary tables, year ending March 2020 (MS Excel Spreadsheet, 66.1 KB)
Detailed entry clearance visas datasets
https://assets.publishing.service.gov.uk/media/5ebe9e4b86650c279626e5f2/passenger-arrivals-admissions-summary-mar-2020-tables.xlsx">Passenger arrivals (admissions) summary tables, year ending March 2020 (MS Excel Spreadsheet, 76.1 KB)
Detailed Passengers initially refused entry at port datasets
https://assets.publishing.service.gov.uk/media/5ebe9edb86650c2791ec7167/extentions-summary-mar-2020-tables.xlsx">Extensions summary tables, year ending March 2020 (MS Excel Spreadsheet, 41.8 KB)
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TwitterHistorical Employment Statistics 1990 - current. The Current Employment Statistics (CES) more information program provides the most current estimates of nonfarm employment, hours, and earnings data by industry (place of work) for the nation as a whole, all states, and most major metropolitan areas. The CES survey is a federal-state cooperative endeavor in which states develop state and sub-state data using concepts, definitions, and technical procedures prescribed by the Bureau of Labor Statistics (BLS). Estimates produced by the CES program include both full- and part-time jobs. Excluded are self-employment, as well as agricultural and domestic positions. In Connecticut, more than 4,000 employers are surveyed each month to determine the number of the jobs in the State. For more information please visit us at http://www1.ctdol.state.ct.us/lmi/ces/default.asp.
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TwitterHistorical gas data series updated annually in July alongside the publication of the Digest of United Kingdom Energy Statistics (DUKES).
MS Excel Spreadsheet, 5.52 MB
This file may not be suitable for users of assistive technology.
Request an accessible format.
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TwitterOpen Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
License information was derived automatically
A dataset to show the statistics of FOIs/EIRs received by Leeds City Council since 1st April 2010. Due to a change in systems, from 1st October 2018 the report has different column headers from previous data sets.
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TwitterOpen Government Licence 3.0http://www.nationalarchives.gov.uk/doc/open-government-licence/version/3/
License information was derived automatically
Provides a reference for the comparison of key figures between the constituent countries, and between the UK as a whole and other nation states. Source agency: Office for National Statistics Designation: National Statistics Language: English Alternative title: United Kingdom Health Statistics
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TwitterAttribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
License information was derived automatically
Context
The dataset tabulates the population of Spring Lake Heights by gender across 18 age groups. It lists the male and female population in each age group along with the gender ratio for Spring Lake Heights. The dataset can be utilized to understand the population distribution of Spring Lake Heights by gender and age. For example, using this dataset, we can identify the largest age group for both Men and Women in Spring Lake Heights. Additionally, it can be used to see how the gender ratio changes from birth to senior most age group and male to female ratio across each age group for Spring Lake Heights.
Key observations
Largest age group (population): Male # 60-64 years (284) | Female # 60-64 years (320). Source: U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.
When available, the data consists of estimates from the U.S. Census Bureau American Community Survey (ACS) 2019-2023 5-Year Estimates.
Age groups:
Scope of gender :
Please note that American Community Survey asks a question about the respondents current sex, but not about gender, sexual orientation, or sex at birth. The question is intended to capture data for biological sex, not gender. Respondents are supposed to respond with the answer as either of Male or Female. Our research and this dataset mirrors the data reported as Male and Female for gender distribution analysis.
Variables / Data Columns
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.
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/.
This dataset is a part of the main dataset for Spring Lake Heights Population by Gender. You can refer the same here
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TwitterFootball generates a vast amount of data, and every move can be scrutinized. This dataset represents raw data from https://www.premierleague.com/. It was collected on October 10th 2021.
The dataset has files grouped by position of the player, as each position represents a difference quantification of data, for a total of 866 players. There are four main positions: - Goalkeeper (gk) - Defender (def) - Midfielder (mid) - Forward (fwd)
Each file is in a csv format, but has a different set of columns. They are self explanatory in their titles, and are not extensively explained. If required, it can be asked of the uploader.
Additionally, there is a file with the links to the data, and the whole set of names.
This dataset is the sole property of the Premier League and is for research only.
This dataset can be clustered and analyzed against other datasets, while trying to understand real time performance of the players themselves. There can be other questions also - such as the distribution of experience and youth.
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TwitterAttribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
License information was derived automatically
The focus of Fingal County Council’s Community Development Office (CDO) is to develop engaged and integrated communities across Fingal, and successfully delivering the fantastic amenity is testament to that collaboration between the CDO and the local communities. The CDO team will continue to actively engage with the local volunteer board to ensure the highest standards of governance and management of the Community Centers for the enjoyment of current and future generations across the County of FingalThe day-to-day operation of the facility will be undertaken on the Council’s behalf by a local voluntary Board of Management who represent many groups in the area and Facility Management Company.visit: our web page at : _ www.fingal.ie/search?keywords=community+centres for further information.
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Twitterhttps://digital.nhs.uk/about-nhs-digital/terms-and-conditionshttps://digital.nhs.uk/about-nhs-digital/terms-and-conditions
This is the latest statistical publication of linked HES (Hospital Episode Statistics) and DID (Diagnostic Imaging Dataset) data held by the Health and Social Care Information Centre. The HES-DID linkage provides the ability to undertake national (within England) analysis along acute patient pathways to understand typical imaging requirements for given procedures, and/or the outcomes after particular imaging has been undertaken, thereby enabling a much deeper understanding of outcomes of imaging and to allow assessment of variation in practice. This publication aims to highlight to users the availability of this updated linkage and provide users of the data with some standard information to assess their analysis approach against. The two data sets have been linked using specific patient identifiers collected in HES and DID. The linkage allows the data sets to be linked from April 2012 when the DID data was first collected; however this report focuses on patients who were present in either data set for the period April 2015-February 2016 only. For DID this is provisional 2015/16 data. For HES this is provisional 2015/16 data. The linkage used for this publication was created on 06 June 2016 and released together with this publication on 07 July 2016.
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Twitterhttps://creativecommons.org/publicdomain/zero/1.0/https://creativecommons.org/publicdomain/zero/1.0/
This dataset is a cleaned version of the Dallas Police Department’s public crime data, sourced from the Dallas Police Crime Analytics Dashboard. It contains detailed information about crime incidents in Dallas from 2022 to January 2025. The data represents RMS (Records Management System) Incidents reported by the Dallas Police Department, reflecting crimes as reported to law enforcement authorities.
The dataset includes a range of crime classifications and related incident details based on preliminary information provided by the reporting parties.
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TwitterA computerized data set of demographic, economic and social data for 227 countries of the world. Information presented includes population, health, nutrition, mortality, fertility, family planning and contraceptive use, literacy, housing, and economic activity data. Tabular data are broken down by such variables as age, sex, and urban/rural residence. Data are organized as a series of statistical tables identified by country and table number. Each record consists of the data values associated with a single row of a given table. There are 105 tables with data for 208 countries. The second file is a note file, containing text of notes associated with various tables. These notes provide information such as definitions of categories (i.e. urban/rural) and how various values were calculated. The IDB was created in the U.S. Census Bureau''s International Programs Center (IPC) to help IPC staff meet the needs of organizations that sponsor IPC research. The IDB provides quick access to specialized information, with emphasis on demographic measures, for individual countries or groups of countries. The IDB combines data from country sources (typically censuses and surveys) with IPC estimates and projections to provide information dating back as far as 1950 and as far ahead as 2050. Because the IDB is maintained as a research tool for IPC sponsor requirements, the amount of information available may vary by country. As funding and research activity permit, the IPC updates and expands the data base content. Types of data include: * Population by age and sex * Vital rates, infant mortality, and life tables * Fertility and child survivorship * Migration * Marital status * Family planning Data characteristics: * Temporal: Selected years, 1950present, projected demographic data to 2050. * Spatial: 227 countries and areas. * Resolution: National population, selected data by urban/rural * residence, selected data by age and sex. Sources of data include: * U.S. Census Bureau * International projects (e.g., the Demographic and Health Survey) * United Nations agencies Links: * ICPSR: http://www.icpsr.umich.edu/icpsrweb/ICPSR/studies/08490
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TwitteraAll data sets were collected from a single crystal.bValues in the parentheses are for the highest-resolution shell.
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TwitterHydrographic and Impairment Statistics (HIS) is a National Park Service (NPS) Water Resources Division (WRD) project established to track certain goals created in response to the Government Performance and Results Act of 1993 (GPRA). One water resources management goal established by the Department of the Interior under GRPA requires NPS to track the percent of its managed surface waters that are meeting Clean Water Act (CWA) water quality standards. This goal requires an accurate inventory that spatially quantifies the surface water hydrography that each bureau manages and a procedure to determine and track which waterbodies are or are not meeting water quality standards as outlined by Section 303(d) of the CWA. This project helps meet this DOI GRPA goal by inventorying and monitoring in a geographic information system for the NPS: (1) CWA 303(d) quality impaired waters and causes; and (2) hydrographic statistics based on the United States Geological Survey (USGS) National Hydrography Dataset (NHD). Hydrographic and 303(d) impairment statistics were evaluated based on a combination of 1:24,000 (NHD) and finer scale data (frequently provided by state GIS layers).
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TwitterCrash Statistics are summarized crash statistics for large trucks and buses involved in fatal and non-fatal Crashes that occurred in the United States. These statistics are derived from two sources: the Fatality Analysis Reporting System (FARS) and the Motor Carrier Management Information System (MCMIS). Crash Statistics contain information that can be used to identify safety problems in specific geographical areas or to compare state statistics to the national crash figures.
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TwitterHydrographic and Impairment Statistics (HIS) is a National Park Service (NPS) Water Resources Division (WRD) project established to track certain goals created in response to the Government Performance and Results Act of 1993 (GPRA). One water resources management goal established by the Department of the Interior under GRPA requires NPS to track the percent of its managed surface waters that are meeting Clean Water Act (CWA) water quality standards. This goal requires an accurate inventory that spatially quantifies the surface water hydrography that each bureau manages and a procedure to determine and track which waterbodies are or are not meeting water quality standards as outlined by Section 303(d) of the CWA. This project helps meet this DOI GRPA goal by inventorying and monitoring in a geographic information system for the NPS: (1) CWA 303(d) quality impaired waters and causes; and (2) hydrographic statistics based on the United States Geological Survey (USGS) National Hydrography Dataset (NHD). Hydrographic and 303(d) impairment statistics were evaluated based on a combination of 1:24,000 (NHD) and finer scale data (frequently provided by state GIS layers).