100+ datasets found
  1. Human development index of the UK 1990-2022

    • statista.com
    Updated Mar 13, 2024
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    Statista (2024). Human development index of the UK 1990-2022 [Dataset]. https://www.statista.com/statistics/876249/human-development-index-of-the-uk/
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    Dataset updated
    Mar 13, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    United Kingdom
    Description

    The Human Development Index (HDI) of the United Kingdom has increased from 0.804 in 1990 to 0.940 by 2022, indicating that the UK has reached very high levels of human development. HDI is a statistic that combines life-expectancy, education levels and GDP per capita. Countries with scores over 0.800 are considered to have very high levels of development, compared with countries that score lower.

  2. Countries with the highest Human Development Index value 2022

    • statista.com
    Updated Oct 21, 2024
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    Statista (2024). Countries with the highest Human Development Index value 2022 [Dataset]. https://www.statista.com/statistics/264630/countries-with-the-highest-human-development-index-ranking/
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    Dataset updated
    Oct 21, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    Worldwide
    Description

    Switzerland had the highest level of the Human Development Index (HDI) worldwide in 2022 with a value of 0.967. With a score of 0.966, Norway followed closely behind Switzerland and had the second highest level of human development in that year. The rise of the Asian tigers In the decades after the Cold War, the four so-called Asian tigers, South Korea, Singapore, Taiwan, and Hong Kong (now a Special Administrative Region of China) experienced rapid economic growth and increasing human development. At number four and number nine of the HDI, respectively, Hong Kong and Singapore are the only Asian locations within the top 10 highest HDI scores. Both locations have experienced tremendous economic growth since the 1980’s and 1990’s. In 1980, the per capita GDP of Hong Kong was 5,703 U.S. dollars, increasing throughout the decades until reaching 50,029 in 2023, which is expected to continue to increase in the future. Meanwhile, in 1989, Singapore had a GDP of nearly 31 billion U.S. dollars, which has risen to nearly 501 billion U.S. dollars today and is also expected to keep increasing. Growth of the UAE The United Arab Emirates (UAE) is the only Middle Eastern country besides Israel within the highest ranking HDI scores globally. Within the Middle East and North Africa (MENA) region, the UAE has the third largest GDP behind Saudi Arabia and Israel, reaching nearly 507 billion U.S. dollars by 2022. Per capita, the UAE GDP was around 21,142 U.S. dollars in 1989, and has nearly doubled to 43,438 U.S. dollars by 2021. Moreover, this is expected to reach over 67,538 U.S. dollars by 2029. On top of being a major oil producer, the UAE has become a hub for finance and business and attracts millions of tourists annually.

  3. United Kingdom Human development index

    • knoema.com
    csv, json, sdmx, xls
    Updated Mar 13, 2024
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    Knoema (2024). United Kingdom Human development index [Dataset]. https://knoema.com/atlas/United-Kingdom/topics/World-Rankings/World-Rankings/Human-development-index
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    sdmx, json, csv, xlsAvailable download formats
    Dataset updated
    Mar 13, 2024
    Dataset authored and provided by
    Knoemahttp://knoema.com/
    Time period covered
    2009 - 2020
    Area covered
    United Kingdom
    Variables measured
    Human Development Index (1=the most developed)
    Description

    Human development index of United Kingdom decreased by 1.39% from 0.93 score in 2019 to 0.92 score in 2020. Since the 0.32% rise in 2018, human development index fell by 0.97% in 2020. A composite index measuring average achievement in three basic dimensions of human development—a long and healthy life, knowledge and a decent standard of living

  4. United Kingdom of Great Britain and Northern Ireland - Human Development...

    • data.humdata.org
    csv
    Updated Jan 1, 2025
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    UNDP Human Development Reports Office (HDRO) (2025). United Kingdom of Great Britain and Northern Ireland - Human Development Indicators [Dataset]. https://data.humdata.org/dataset/hdro-data-for-united-kingdom-of-great-britain-and-northern-ireland
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    csv(104658), csv(16680), csv(1634)Available download formats
    Dataset updated
    Jan 1, 2025
    Dataset provided by
    United Nations Development Programmehttp://www.undp.org/
    License

    Attribution 3.0 (CC BY 3.0)https://creativecommons.org/licenses/by/3.0/
    License information was derived automatically

    Area covered
    Great Britain, United Kingdom
    Description

    The aim of the Human Development Report is to stimulate global, regional and national policy-relevant discussions on issues pertinent to human development. Accordingly, the data in the Report require the highest standards of data quality, consistency, international comparability and transparency. The Human Development Report Office (HDRO) fully subscribes to the Principles governing international statistical activities.

    The HDI was created to emphasize that people and their capabilities should be the ultimate criteria for assessing the development of a country, not economic growth alone. The HDI can also be used to question national policy choices, asking how two countries with the same level of GNI per capita can end up with different human development outcomes. These contrasts can stimulate debate about government policy priorities. The Human Development Index (HDI) is a summary measure of average achievement in key dimensions of human development: a long and healthy life, being knowledgeable and have a decent standard of living. The HDI is the geometric mean of normalized indices for each of the three dimensions.

    The 2019 Global Multidimensional Poverty Index (MPI) data shed light on the number of people experiencing poverty at regional, national and subnational levels, and reveal inequalities across countries and among the poor themselves.Jointly developed by the United Nations Development Programme (UNDP) and the Oxford Poverty and Human Development Initiative (OPHI) at the University of Oxford, the 2019 global MPI offers data for 101 countries, covering 76 percent of the global population. The MPI provides a comprehensive and in-depth picture of global poverty – in all its dimensions – and monitors progress towards Sustainable Development Goal (SDG) 1 – to end poverty in all its forms. It also provides policymakers with the data to respond to the call of Target 1.2, which is to ‘reduce at least by half the proportion of men, women, and children of all ages living in poverty in all its dimensions according to national definition'.

  5. Cuba Multi Dimensional Poverty Index

    • data.humdata.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Cuba Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/cuba-mpi
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    csv(2383)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    License

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

    Area covered
    Cuba
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  6. Yemen Multi Dimensional Poverty Index

    • data.humdata.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Yemen Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/yemen-mpi
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    csv(3066), csv(5470)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    License

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

    Area covered
    Yemen
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  7. k

    The Human Capital Report

    • datasource.kapsarc.org
    • data.kapsarc.org
    Updated Dec 17, 2024
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    (2024). The Human Capital Report [Dataset]. https://datasource.kapsarc.org/explore/dataset/the-human-capital-report-2016/
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    Dataset updated
    Dec 17, 2024
    Description

    Explore The Human Capital Report dataset for insights into Human Capital Index, Development, and World Rankings. Find data on Probability of Survival to Age 5, Expected Years of School, Harmonized Test Scores, and more.

    Low income, Upper middle income, Lower middle income, High income, Human Capital Index (Lower Bound), Human Capital Index, Human Capital Index (Upper Bound), Probability of Survival to Age 5, Expected Years of School, Harmonized Test Scores, Learning-Adjusted Years of School, Fraction of Children Under 5 Not Stunted, Adult Survival Rate, Development, Human Capital, World Rankings

    Afghanistan, Albania, Algeria, Angola, Antigua and Barbuda, Argentina, Armenia, Australia, Austria, Azerbaijan, Bahrain, Bangladesh, Belarus, Belgium, Benin, Bhutan, Bosnia and Herzegovina, Botswana, Brazil, Brunei, Bulgaria, Burkina Faso, Burundi, Côte d'Ivoire, Cambodia, Cameroon, Canada, Central African Republic, Chad, Chile, China, Colombia, Comoros, Congo, Costa Rica, Croatia, Cyprus, Denmark, Dominica, Dominican Republic, Ecuador, Egypt, El Salvador, Estonia, Eswatini, Ethiopia, Fiji, Finland, France, Gabon, Gambia, Georgia, Germany, Ghana, Greece, Grenada, Guatemala, Guinea, Guyana, Haiti, Honduras, Hungary, Iceland, India, Indonesia, Iran, Iraq, Ireland, Israel, Italy, Jamaica, Japan, Jordan, Kazakhstan, Kenya, Kiribati, Kuwait, Latvia, Lebanon, Lesotho, Liberia, Lithuania, Luxembourg, Madagascar, Malawi, Malaysia, Mali, Malta, Marshall Islands, Mauritania, Mauritius, Mexico, Micronesia, Moldova, Mongolia, Montenegro, Morocco, Mozambique, Myanmar, Namibia, Nauru, Nepal, Netherlands, New Zealand, Nicaragua, Niger, Nigeria, North Macedonia, Norway, Oman, Pakistan, Palau, Panama, Papua New Guinea, Paraguay, Peru, Philippines, Poland, Portugal, Qatar, Romania, Russia, Rwanda, Samoa, Saudi Arabia, Senegal, Serbia, Seychelles, Sierra Leone, Singapore, Slovenia, Solomon Islands, South Africa, South Sudan, Spain, Sri Lanka, Sudan, Sweden, Switzerland, Tajikistan, Tanzania, Thailand, Timor-Leste, Togo, Tonga, Trinidad and Tobago, Tunisia, Turkey, Tuvalu, Uganda, Ukraine, United Arab Emirates, United Kingdom, Uruguay, Uzbekistan, Vanuatu, Vietnam, Yemen, Zambia, Zimbabwe, WORLD

    Follow data.kapsarc.org for timely data to advance energy economics research.

    Last year edition of the World Economic Forum Human Capital Report explored the factors contributing to the development of an educated, productive and healthy workforce. This year edition deepens the analysis by focusing on a number of key issues that can support better design of education policy and future workforce planning.

  8. Ecuador Multi Dimensional Poverty Index

    • data.humdata.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Ecuador Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/ecuador-mpi
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    csv(6243), csv(3494)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    License

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

    Area covered
    Ecuador
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  9. Syrian Arab Republic: Global Multidimensional Poverty Index (MPI)

    • data.amerigeoss.org
    xlsx
    Updated Dec 21, 2021
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    UN Humanitarian Data Exchange (2021). Syrian Arab Republic: Global Multidimensional Poverty Index (MPI) [Dataset]. https://data.amerigeoss.org/uk/dataset/showcases/syrian-arab-republic-mpi
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    xlsx(56802)Available download formats
    Dataset updated
    Dec 21, 2021
    Dataset provided by
    United Nationshttp://un.org/
    Area covered
    Syria
    Description

    This table contains subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI 2021 methodology is detailed in Alkire, Kanagaratnam & Suppa (2021).

  10. f

    Calculating the Unhealthy Behaviour Index (example: United Kingdom).

    • plos.figshare.com
    • figshare.com
    xls
    Updated May 31, 2023
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    Fabrizio Ferretti (2023). Calculating the Unhealthy Behaviour Index (example: United Kingdom). [Dataset]. http://doi.org/10.1371/journal.pone.0141834.t002
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    xlsAvailable download formats
    Dataset updated
    May 31, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Fabrizio Ferretti
    License

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

    Area covered
    United Kingdom
    Description

    agm (ECIX, NBDX) = geometric mean of ECIX and NBDX.Calculating the Unhealthy Behaviour Index (example: United Kingdom).

  11. Turkmenistan: subnational poverty

    • data.amerigeoss.org
    xlsx
    Updated Dec 21, 2022
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    UN Humanitarian Data Exchange (2022). Turkmenistan: subnational poverty [Dataset]. https://data.amerigeoss.org/id/dataset/turkmenistan-mpi
    Explore at:
    xlsx(45375)Available download formats
    Dataset updated
    Dec 21, 2022
    Dataset provided by
    United Nationshttp://un.org/
    Area covered
    Turkmenistan
    Description

    This table contains subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2022).

  12. The Global Multidimensional Poverty Index 2024: harmonised level estimates...

    • ora.ox.ac.uk
    csv, octet-stream +2
    Updated Jan 1, 2024
    + more versions
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    Alkire, S; Kanagaratnam, U; Suppa, N (2024). The Global Multidimensional Poverty Index 2024: harmonised level estimates and their changes over time [Dataset]. http://doi.org/10.5287/ora-rvmbwoark
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    plain(2387), csv(30967677), octet-stream(16391715), octet-stream(14776773), zip(3079029), csv(31115054)Available download formats
    Dataset updated
    Jan 1, 2024
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    Authors
    Alkire, S; Kanagaratnam, U; Suppa, N
    License

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

    Description

    This Database provides estimates of the global Multidimensional Poverty Index (MPI) an international measure of acute poverty. More specifically, it contains harmonised level estimates and their changes over time of the global MPI and related sub-indices, which have been estimated for the 2024 release. For this Database all deprivation indicators have been harmonised over time.

    The Database covers estimates for 86 countries and 863 subnational regions. 40 of the 86 countries have trends for two points in time, while poverty trends in 36 countries are based on three points in time. Six countries (Benin, Eswatini, Nigeria, Philippines, Tanzania, and Thailand) have results for four points in time, three countries (Ghana, Mexico and Peru) for five time periods and Nepal have trends for six time periods. The estimates are based on 233 individual survey datasets, mostly the Demographic Health Survey (DHS) and the Multiple Indicator Cluster Survey (MICS). The Database is organised in two results files, one for level estimates and one for change estimates. Both results files are each provided in Stata format (dta) and comma separated values (csv). This repository also contains the computer script files to extract and clean the micro data for replication purposes (i.e. the Stata do-files).

  13. Countries with the largest gross domestic product (GDP) per capita 2025

    • statista.com
    Updated Oct 23, 2024
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    Statista (2024). Countries with the largest gross domestic product (GDP) per capita 2025 [Dataset]. https://www.statista.com/statistics/270180/countries-with-the-largest-gross-domestic-product-gdp-per-capita/
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    Dataset updated
    Oct 23, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2024
    Area covered
    Worldwide
    Description

    In 2025, Luxembourg was the country with the highest gross domestic product per capita in the world. Of the 20 listed countries, 13 are in Europe and four are in Asia, alongside the U.S., Canada, and Australia. There are no African or Latin American countries among the top 20. Correlation with high living standards While GDP is a useful indicator for measuring the size or strength of an economy, GDP per capita is much more reflective of living standards. For example, when compared to life expectancy or indices such as the Human Development Index or the World Happiness Report, there is a strong overlap - 14 of the 20 countries on this list are also ranked among the 20 happiest countries in 2024, and all 20 have "very high" HDIs. Misleading metrics? GDP per capita figures, however, can be misleading, and to paint a fuller picture of a country's living standards then one must look at multiple metrics. GDP per capita figures can be skewed by inequalities in wealth distribution, and in countries such as those in the Middle East, a relatively large share of the population lives in poverty while a smaller number live affluent lifestyles.

  14. J

    Jamaica Multidimensional Poverty Headcount Ratio: UNDP: % of total...

    • ceicdata.com
    Updated Mar 17, 2025
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    CEICdata.com (2025). Jamaica Multidimensional Poverty Headcount Ratio: UNDP: % of total population [Dataset]. https://www.ceicdata.com/en/jamaica/social-poverty-and-inequality/multidimensional-poverty-headcount-ratio-undp--of-total-population
    Explore at:
    Dataset updated
    Mar 17, 2025
    Dataset provided by
    CEICdata.com
    License

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

    Time period covered
    Dec 1, 2018
    Area covered
    Jamaica
    Description

    Jamaica Multidimensional Poverty Headcount Ratio: UNDP: % of total population data was reported at 2.800 % in 2018. Jamaica Multidimensional Poverty Headcount Ratio: UNDP: % of total population data is updated yearly, averaging 2.800 % from Dec 2018 (Median) to 2018, with 1 observations. The data reached an all-time high of 2.800 % in 2018 and a record low of 2.800 % in 2018. Jamaica Multidimensional Poverty Headcount Ratio: UNDP: % of total population data remains active status in CEIC and is reported by World Bank. The data is categorized under Global Database’s Jamaica – Table JM.World Bank.WDI: Social: Poverty and Inequality. The multidimensional poverty headcount ratio (UNDP) is the percentage of a population living in poverty according to UNDPs multidimensional poverty index. The index includes three dimensions -- health, education, and living standards.;Alkire, S., Kanagaratnam, U., and Suppa, N. (2023). ‘The global Multidimensional Poverty Index (MPI) 2023 country results and methodological note’, OPHI MPI Methodological Note 55, Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. (https://ophi.org.uk/mpi-methodological-note-55-2/);;

  15. Brazil Multi Dimensional Poverty Index

    • data.amerigeoss.org
    • data.humdata.org
    csv
    Updated Dec 18, 2024
    + more versions
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    UN Humanitarian Data Exchange (2024). Brazil Multi Dimensional Poverty Index [Dataset]. https://data.amerigeoss.org/en_AU/dataset/brazil-mpi
    Explore at:
    csv(3412)Available download formats
    Dataset updated
    Dec 18, 2024
    Dataset provided by
    United Nationshttp://un.org/
    United Nations Office for the Coordination of Humanitarian Affairshttp://www.unocha.org/
    Area covered
    Brazil
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  16. A

    Albania Multidimensional Poverty Headcount Ratio: UNDP: % of total...

    • ceicdata.com
    Updated Feb 6, 2018
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    CEICdata.com (2018). Albania Multidimensional Poverty Headcount Ratio: UNDP: % of total population [Dataset]. https://www.ceicdata.com/en/albania/social-poverty-and-inequality
    Explore at:
    Dataset updated
    Feb 6, 2018
    Dataset provided by
    CEICdata.com
    License

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

    Time period covered
    Dec 1, 2017
    Area covered
    Albania
    Description

    Multidimensional Poverty Headcount Ratio: UNDP: % of total population data was reported at 0.700 % in 2017. Multidimensional Poverty Headcount Ratio: UNDP: % of total population data is updated yearly, averaging 0.700 % from Dec 2017 (Median) to 2017, with 1 observations. The data reached an all-time high of 0.700 % in 2017 and a record low of 0.700 % in 2017. Multidimensional Poverty Headcount Ratio: UNDP: % of total population data remains active status in CEIC and is reported by World Bank. The data is categorized under Global Database’s Albania – Table AL.World Bank.WDI: Social: Poverty and Inequality. The multidimensional poverty headcount ratio (UNDP) is the percentage of a population living in poverty according to UNDPs multidimensional poverty index. The index includes three dimensions -- health, education, and living standards.;Alkire, S., Kanagaratnam, U., and Suppa, N. (2023). ‘The global Multidimensional Poverty Index (MPI) 2023 country results and methodological note’, OPHI MPI Methodological Note 55, Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. (https://ophi.org.uk/mpi-methodological-note-55-2/);;

  17. Zimbabwe Multi Dimensional Poverty Index

    • data.humdata.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Zimbabwe Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/zimbabwe-mpi
    Explore at:
    csv(1733), csv(4361)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  18. Namibia Multi Dimensional Poverty Index

    • data.humdata.org
    • data.amerigeoss.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Namibia Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/namibia-mpi
    Explore at:
    csv(3626), csv(2019)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    Area covered
    Namibia
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

  19. S

    Samoa Multidimensional Poverty Headcount Ratio: UNDP: % of total population

    • ceicdata.com
    Updated Dec 15, 2022
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    CEICdata.com (2022). Samoa Multidimensional Poverty Headcount Ratio: UNDP: % of total population [Dataset]. https://www.ceicdata.com/en/samoa/social-poverty-and-inequality
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    Dataset updated
    Dec 15, 2022
    Dataset provided by
    CEICdata.com
    License

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

    Time period covered
    Dec 1, 2019
    Area covered
    Samoa
    Description

    Multidimensional Poverty Headcount Ratio: UNDP: % of total population data was reported at 6.300 % in 2019. Multidimensional Poverty Headcount Ratio: UNDP: % of total population data is updated yearly, averaging 6.300 % from Dec 2019 (Median) to 2019, with 1 observations. The data reached an all-time high of 6.300 % in 2019 and a record low of 6.300 % in 2019. Multidimensional Poverty Headcount Ratio: UNDP: % of total population data remains active status in CEIC and is reported by World Bank. The data is categorized under Global Database’s Samoa – Table WS.World Bank.WDI: Social: Poverty and Inequality. The multidimensional poverty headcount ratio (UNDP) is the percentage of a population living in poverty according to UNDPs multidimensional poverty index. The index includes three dimensions -- health, education, and living standards.;Alkire, S., Kanagaratnam, U., and Suppa, N. (2023). ‘The global Multidimensional Poverty Index (MPI) 2023 country results and methodological note’, OPHI MPI Methodological Note 55, Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. (https://ophi.org.uk/mpi-methodological-note-55-2/);;

  20. Uzbekistan Multi Dimensional Poverty Index

    • data.humdata.org
    • data.amerigeoss.org
    csv
    Updated Feb 24, 2025
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    Oxford Poverty & Human Development Initiative (2025). Uzbekistan Multi Dimensional Poverty Index [Dataset]. https://data.humdata.org/dataset/uzbekistan-mpi
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    csv(1197)Available download formats
    Dataset updated
    Feb 24, 2025
    Dataset provided by
    Oxford Poverty and Human Development Initiativehttps://ophi.org.uk/
    Area covered
    Uzbekistan
    Description

    The index provides the only comprehensive measure available for non-income poverty, which has become a critical underpinning of the SDGs. Critically the MPI comprises variables that are already reported under the Demographic Health Surveys (DHS) and Multi-Indicator Cluster Surveys (MICS) The resources subnational multidimensional poverty data from the data tables published by the Oxford Poverty and Human Development Initiative (OPHI), University of Oxford. The global Multidimensional Poverty Index (MPI) measures multidimensional poverty in over 100 developing countries, using internationally comparable datasets and is updated annually. The measure captures the severe deprivations that each person faces at the same time using information from 10 indicators, which are grouped into three equally weighted dimensions: health, education, and living standards. The global MPI methodology is detailed in Alkire, Kanagaratnam & Suppa (2023)

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Statista (2024). Human development index of the UK 1990-2022 [Dataset]. https://www.statista.com/statistics/876249/human-development-index-of-the-uk/
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Human development index of the UK 1990-2022

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Dataset updated
Mar 13, 2024
Dataset authored and provided by
Statistahttp://statista.com/
Area covered
United Kingdom
Description

The Human Development Index (HDI) of the United Kingdom has increased from 0.804 in 1990 to 0.940 by 2022, indicating that the UK has reached very high levels of human development. HDI is a statistic that combines life-expectancy, education levels and GDP per capita. Countries with scores over 0.800 are considered to have very high levels of development, compared with countries that score lower.

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