6 datasets found
  1. T

    South Korea Coronavirus COVID-19 Deaths

    • tradingeconomics.com
    csv, excel, json, xml
    Updated Mar 4, 2020
    + more versions
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    South Korea Coronavirus COVID-19 Deaths [Dataset]. https://tradingeconomics.com/south-korea/coronavirus-deaths
    Explore at:
    json, excel, csv, xmlAvailable download formats
    Dataset updated
    Mar 4, 2020
    Dataset authored and provided by
    TRADING ECONOMICS
    License

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

    Time period covered
    Jan 4, 2020 - May 17, 2023
    Area covered
    South Korea
    Description

    South Korea recorded 34610 Coronavirus Deaths since the epidemic began, according to the World Health Organization (WHO). In addition, South Korea reported 31415280 Coronavirus Cases. This dataset includes a chart with historical data for South Korea Coronavirus Deaths.

  2. COVID-19

    • kaggle.com
    zip
    Updated May 25, 2020
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    Atila Madai (2020). COVID-19 [Dataset]. https://www.kaggle.com/atilamadai/covid19
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    zip(68606230 bytes)Available download formats
    Dataset updated
    May 25, 2020
    Authors
    Atila Madai
    License

    https://creativecommons.org/publicdomain/zero/1.0/https://creativecommons.org/publicdomain/zero/1.0/

    Description

    Context

    The novel coronavirus that has infected more than 79,551 people worldwide (as of time of writing this context) is spreading rapidly, and independently, in countries outside of China, including Italy, South Korea, and Iran. The viral illness is being diagnosed among hundreds of people in South Korea, Italy and Iran who have no connection to China.

    Content

    In the notebook I use the time series data. Time series data columns are described in the column description.

    Acknowledgements

    Thanks to the Johns Hopkins University for providing this data-set for educational purposes. https://github.com/CSSEGISandData/COVID-19

    Inspiration

    To visualize COVID-19 spread world wide.

  3. z

    Counts of COVID-19 reported in KOREA (DEMOCRATIC PEOPLE'S REPUBLIC OF):...

    • zenodo.org
    • tycho.pitt.edu
    • +1more
    json, xml, zip
    Updated Jun 3, 2024
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    MIDAS Coordination Center; MIDAS Coordination Center (2024). Counts of COVID-19 reported in KOREA (DEMOCRATIC PEOPLE'S REPUBLIC OF): 2020-2021 [Dataset]. http://doi.org/10.25337/t7/ptycho.v2.0/kp.840539006
    Explore at:
    xml, zip, jsonAvailable download formats
    Dataset updated
    Jun 3, 2024
    Dataset provided by
    Project Tycho
    Authors
    MIDAS Coordination Center; MIDAS Coordination Center
    License

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

    Time period covered
    Jan 3, 2020 - Jul 31, 2021
    Description

    Project Tycho datasets contain case counts for reported disease conditions for countries around the world. The Project Tycho data curation team extracts these case counts from various reputable sources, typically from national or international health authorities, such as the US Centers for Disease Control or the World Health Organization. These original data sources include both open- and restricted-access sources. For restricted-access sources, the Project Tycho team has obtained permission for redistribution from data contributors. All datasets contain case count data that are identical to counts published in the original source and no counts have been modified in any way by the Project Tycho team, except for aggregation of individual case count data into daily counts when that was the best data available for a disease and location. The Project Tycho team has pre-processed datasets by adding new variables, such as standard disease and location identifiers, that improve data interpretability. We also formatted the data into a standard data format. All geographic locations at the country and admin1 level have been represented at the same geographic level as in the data source, provided an ISO code or codes could be identified, unless the data source specifies that the location is listed at an inaccurate geographical level. For more information about decisions made by the curation team, recommended data processing steps, and the data sources used, please see the README that is included in the dataset download ZIP file.

  4. f

    Data_Sheet_6_Toward a Country-Based Prediction Model of COVID-19 Infections...

    • frontiersin.figshare.com
    pdf
    Updated May 30, 2023
    + more versions
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    Tianshu Gu; Lishi Wang; Ning Xie; Xia Meng; Zhijun Li; Arnold Postlethwaite; Lotfi Aleya; Scott C. Howard; Weikuan Gu; Yongjun Wang (2023). Data_Sheet_6_Toward a Country-Based Prediction Model of COVID-19 Infections and Deaths Between Disease Apex and End: Evidence From Countries With Contained Numbers of COVID-19.pdf [Dataset]. http://doi.org/10.3389/fmed.2021.585115.s006
    Explore at:
    pdfAvailable download formats
    Dataset updated
    May 30, 2023
    Dataset provided by
    Frontiers
    Authors
    Tianshu Gu; Lishi Wang; Ning Xie; Xia Meng; Zhijun Li; Arnold Postlethwaite; Lotfi Aleya; Scott C. Howard; Weikuan Gu; Yongjun Wang
    License

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

    Description

    The complexity of COVID-19 and variations in control measures and containment efforts in different countries have caused difficulties in the prediction and modeling of the COVID-19 pandemic. We attempted to predict the scale of the latter half of the pandemic based on real data using the ratio between the early and latter halves from countries where the pandemic is largely over. We collected daily pandemic data from China, South Korea, and Switzerland and subtracted the ratio of pandemic days before and after the disease apex day of COVID-19. We obtained the ratio of pandemic data and created multiple regression models for the relationship between before and after the apex day. We then tested our models using data from the first wave of the disease from 14 countries in Europe and the US. We then tested the models using data from these countries from the entire pandemic up to March 30, 2021. Results indicate that the actual number of cases from these countries during the first wave mostly fall in the predicted ranges of liniar regression, excepting Spain and Russia. Similarly, the actual deaths in these countries mostly fall into the range of predicted data. Using the accumulated data up to the day of apex and total accumulated data up to March 30, 2021, the data of case numbers in these countries are falling into the range of predicted data, except for data from Brazil. The actual number of deaths in all the countries are at or below the predicted data. In conclusion, a linear regression model built with real data from countries or regions from early pandemics can predict pandemic scales of the countries where the pandemics occur late. Such a prediction with a high degree of accuracy provides valuable information for governments and the public.

  5. f

    Additional file 4 of Comparative analysis of COVID-19 guidelines from six...

    • springernature.figshare.com
    • explore.openaire.eu
    • +1more
    xlsx
    Updated Feb 14, 2024
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    Ji Youn Yoo; Samia Valeria Ozorio Dutra; Dany Fanfan; Sarah Sniffen; Hao Wang; Jamile Siddiqui; Hyo-Suk Song; Sung Hwan Bang; Dong Eun Kim; Shihoon Kim; Maureen Groer (2024). Additional file 4 of Comparative analysis of COVID-19 guidelines from six countries: a qualitative study on the US, China, South Korea, the UK, Brazil, and Haiti [Dataset]. http://doi.org/10.6084/m9.figshare.13331987.v1
    Explore at:
    xlsxAvailable download formats
    Dataset updated
    Feb 14, 2024
    Dataset provided by
    figshare
    Authors
    Ji Youn Yoo; Samia Valeria Ozorio Dutra; Dany Fanfan; Sarah Sniffen; Hao Wang; Jamile Siddiqui; Hyo-Suk Song; Sung Hwan Bang; Dong Eun Kim; Shihoon Kim; Maureen Groer
    License

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

    Area covered
    China, United Kingdom, United States, Haiti, Brazil, South Korea
    Description

    Additional file 4. Confirmed and Deaths Data.

  6. f

    Effect of the coverage rate on COVID-19 death.

    • figshare.com
    xls
    Updated Jun 4, 2023
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    Taeyong Lee; Hee-Dae Kwon; Jeehyun Lee (2023). Effect of the coverage rate on COVID-19 death. [Dataset]. http://doi.org/10.1371/journal.pone.0249262.t004
    Explore at:
    xlsAvailable download formats
    Dataset updated
    Jun 4, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Taeyong Lee; Hee-Dae Kwon; Jeehyun Lee
    License

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

    Description

    Effect of the coverage rate on COVID-19 death.

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South Korea Coronavirus COVID-19 Deaths [Dataset]. https://tradingeconomics.com/south-korea/coronavirus-deaths

South Korea Coronavirus COVID-19 Deaths

South Korea Coronavirus COVID-19 Deaths - Historical Dataset (2020-01-04/2023-05-17)

Explore at:
json, excel, csv, xmlAvailable download formats
Dataset updated
Mar 4, 2020
Dataset authored and provided by
TRADING ECONOMICS
License

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

Time period covered
Jan 4, 2020 - May 17, 2023
Area covered
South Korea
Description

South Korea recorded 34610 Coronavirus Deaths since the epidemic began, according to the World Health Organization (WHO). In addition, South Korea reported 31415280 Coronavirus Cases. This dataset includes a chart with historical data for South Korea Coronavirus Deaths.

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