100+ datasets found
  1. Cancer incidence in European countries in 2022

    • statista.com
    Updated Nov 29, 2025
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    Statista (2025). Cancer incidence in European countries in 2022 [Dataset]. https://www.statista.com/statistics/456786/cancer-incidence-europe/
    Explore at:
    Dataset updated
    Nov 29, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    Europe, EU
    Description

    In 2022, the highest cancer rate for men and women among European countries was in Denmark with 728.5 cancer cases per 100,000 population. Ireland and the Netherlands followed, with 641.6 and 641.4 people diagnosed with cancer per 100,000 population, respectively.
    Lung cancer Lung cancer is the deadliest type of cancer worldwide, and in Europe, Germany was the country with the highest number of lung cancer deaths in 2022, with 47.7 thousand deaths. However, when looking at the incidence rate of lung cancer, Hungary had the highest for both males and females, with 138.4 and 72.3 cases per 100,000 population, respectively.
    Breast cancer Breast cancer is the most common type of cancer among women with an incidence rate of 83.3 cases per 100,000 population in Europe in 2022. Cyprus was the country with the highest incidence of breast cancer, followed by Belgium and France. The mortality rate due to breast cancer was 34.8 deaths per 100,000 population across Europe, and Cyprus was again the country with the highest figure.

  2. Cancer Rate by Countries

    • kaggle.com
    zip
    Updated Jan 17, 2022
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    Diana Pratiwi (2022). Cancer Rate by Countries [Dataset]. https://www.kaggle.com/datasets/dianapratiwi/cancer-rate-by-countries
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    zip(886 bytes)Available download formats
    Dataset updated
    Jan 17, 2022
    Authors
    Diana Pratiwi
    License

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

    Description

    This dataset contains information about cancer rate for 50 countries in the world. The data was obtained by doing web scraping from Wikipedia using BeautifulSoup in Python.

    Wikipedia link: https://en.wikipedia.org/wiki/List_of_countries_by_cancer_rate

    Image source: https://unsplash.com/photos/L7en7Lb-Ovc?utm_source=unsplash&utm_medium=referral&utm_content=creditShareLink

  3. 12-month prevalence rates of cancer worldwide in 2022, by region

    • statista.com
    Updated Apr 15, 2024
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    Statista (2024). 12-month prevalence rates of cancer worldwide in 2022, by region [Dataset]. https://www.statista.com/statistics/1031220/cancer-prevalence-rates-worldwide-by-region/
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    Dataset updated
    Apr 15, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    Worldwide
    Description

    North America had the highest 12-month cancer prevalence rate in 2022. The 12-month prevalence rate for all cancers in North America as of this time was 595 per 100,000 population. This statistic displays 12-month cancer prevalence rates worldwide in 2022, by region.

  4. Cancer Deaths by Country and Type (1990-2016) 🧮💀

    • kaggle.com
    zip
    Updated Sep 13, 2023
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    Albert Antony (2023). Cancer Deaths by Country and Type (1990-2016) 🧮💀 [Dataset]. https://www.kaggle.com/datasets/antimoni/cancer-deaths-by-country-and-type-1990-2016
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    zip(971143 bytes)Available download formats
    Dataset updated
    Sep 13, 2023
    Authors
    Albert Antony
    License

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

    Description

    Dataset Description This dataset contains information on cancer deaths by country, type, and year. It includes data on 18 different types of cancer, including liver cancer, kidney cancer, larynx cancer, breast cancer, thyroid cancer, stomach cancer, bladder cancer, uterine cancer, ovarian cancer, cervical cancer, prostate cancer, pancreatic cancer, esophageal cancer, testicular cancer, nasopharynx cancer, other pharynx cancer, colon and rectum cancer, non-melanoma skin cancer, lip and oral cavity cancer, brain and nervous system cancer, tracheal, bronchus, and lung cancer, gallbladder and biliary tract cancer, malignant skin melanoma, leukemia, Hodgkin lymphoma, multiple myeloma, and other cancers.

    Data Fields The dataset includes the following data fields:

    • Country: The country where the cancer death occurred.
    • Code: The country code for the country where the cancer death occurred.
    • Year: The year in which the cancer death occurred.
    • Liver cancer: The number of cancer deaths from liver cancer in the country in the year.
    • Kidney cancer: The number of cancer deaths from kidney cancer in the country in the year.
    • Larynx cancer: The number of cancer deaths from larynx cancer in the country in the year.
    • Breast cancer: The number of cancer deaths from breast cancer in the country in the year.
    • Thyroid cancer: The number of cancer deaths from thyroid cancer in the country in the year.
    • Stomach cancer: The number of cancer deaths from stomach cancer in the country in the year.
    • Bladder cancer: The number of cancer deaths from bladder cancer in the country in the year.
    • Uterine cancer: The number of cancer deaths from uterine cancer in the country in the year.
    • Ovarian cancer: The number of cancer deaths from ovarian cancer in the country in the year.
    • Cervical cancer: The number of cancer deaths from cervical cancer in the country in the year.
    • Prostate cancer: The number of cancer deaths from prostate cancer in the country in the year.
    • Pancreatic cancer: The number of cancer deaths from pancreatic cancer in the country in the year.
    • Esophageal cancer: The number of cancer deaths from esophageal cancer in the country in the year.
    • Testicular cancer: The number of cancer deaths from testicular cancer in the country in the year.
    • Nasopharynx cancer: The number of cancer deaths from nasopharynx cancer in the country in the year.
    • Other pharynx cancer: The number of cancer deaths from other pharynx cancer in the country in the year.
    • Colon and rectum cancer: The number of cancer deaths from colon and rectum cancer in the country in the year.
    • Non-melanoma skin cancer: The number of cancer deaths from non-melanoma skin cancer in the country in the year.
    • Lip and oral cavity cancer: The number of cancer deaths from lip and oral cavity cancer in the country in the year.
    • Brain and nervous system cancer: The number of cancer deaths from brain and nervous system cancer in the country in the year.
    • Tracheal, bronchus, and lung cancer: The number of cancer deaths from tracheal, bronchus, and lung cancer in the country in the year.
    • Gallbladder and biliary tract cancer: The number of cancer deaths from gallbladder and biliary tract cancer in the country in the year.
    • Malignant skin melanoma: The number of cancer deaths from malignant skin melanoma in the country in the year.
    • Leukemia: The number of cancer deaths from leukemia in the country in the year.
    • Hodgkin lymphoma: The number of cancer deaths from Hodgkin lymphoma in the country in the year.
    • Multiple myeloma: The number of cancer deaths from multiple myeloma in the country in the year.
    • Other cancers: The number of cancer deaths from other cancers in the country in the year.

    Data Source The data in this dataset was collected from the World Health Organization (WHO). The WHO collects data on cancer deaths from countries around the world.

    Usage This dataset can be used to study cancer deaths by country, type, and year. It can also be used to compare cancer death rates between different countries or over time.

    https://www.googleapis.com/download/storage/v1/b/kaggle-user-content/o/inbox%2F16169071%2F98f6c6f321aad496b703685519b6df6a%2Fcancer-cells-th.jpg?generation=1694610742970317&alt=media" alt="">

  5. Cancer Mortality & Incidence Rates: (Country LVL)

    • kaggle.com
    zip
    Updated Dec 3, 2022
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    The Devastator (2022). Cancer Mortality & Incidence Rates: (Country LVL) [Dataset]. https://www.kaggle.com/datasets/thedevastator/us-county-level-cancer-mortality-and-incidence-r
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    zip(146998 bytes)Available download formats
    Dataset updated
    Dec 3, 2022
    Authors
    The Devastator
    Description

    Cancer Mortality & Incidence Rates: (Country LVL)

    Investigating Cancer Trends over time

    By Data Exercises [source]

    About this dataset

    This dataset is a comprehensive collection of data from county-level cancer mortality and incidence rates in the United States between 2000-2014. This data provides an unprecedented level of detail into cancer cases, deaths, and trends at a local level. The included columns include County, FIPS, age-adjusted death rate, average death rate per year, recent trend (2) in death rates, recent 5-year trend (2) in death rates and average annual count for each county. This dataset can be used to provide deep insight into the patterns and effects of cancer on communities as well as help inform policy decisions related to mitigating risk factors or increasing preventive measures such as screenings. With this comprehensive set of records from across the United States over 15 years, you will be able to make informed decisions regarding individual patient care or policy development within your own community!

    More Datasets

    For more datasets, click here.

    Featured Notebooks

    • 🚨 Your notebook can be here! 🚨!

    How to use the dataset

    This dataset provides comprehensive US county-level cancer mortality and incidence rates from 2000 to 2014. It includes the mortality and incidence rate for each county, as well as whether the county met the objective of 45.5 deaths per 100,000 people. It also provides information on recent trends in death rates and average annual counts of cases over the five year period studied.

    This dataset can be extremely useful to researchers looking to study trends in cancer death rates across counties. By using this data, researchers will be able to gain valuable insight into how different counties are performing in terms of providing treatment and prevention services for cancer patients and whether preventative measures and healthcare access are having an effect on reducing cancer mortality rates over time. This data can also be used to inform policy makers about counties needing more target prevention efforts or additional resources for providing better healthcare access within at risk communities.

    When using this dataset, it is important to pay close attention to any qualitative columns such as “Recent Trend” or “Recent 5-Year Trend (2)” that may provide insights into long term changes that may not be readily apparent when using quantitative variables such as age-adjusted death rate or average deaths per year over shorter periods of time like one year or five years respectively. Additionally, when studying differences between different counties it is important to take note of any standard FIPS code differences that may indicate that data was collected by a different source with a difference methodology than what was used in other areas studied

    Research Ideas

    • Using this dataset, we can identify patterns in cancer mortality and incidence rates that are statistically significant to create treatment regimens or preventive measures specifically targeting those areas.
    • This data can be useful for policymakers to target areas with elevated cancer mortality and incidence rates so they can allocate financial resources to these areas more efficiently.
    • This dataset can be used to investigate which factors (such as pollution levels, access to medical care, genetic make up) may have an influence on the cancer mortality and incidence rates in different US counties

    Acknowledgements

    If you use this dataset in your research, please credit the original authors. Data Source

    License

    License: Dataset copyright by authors - You are free to: - Share - copy and redistribute the material in any medium or format for any purpose, even commercially. - Adapt - remix, transform, and build upon the material for any purpose, even commercially. - You must: - Give appropriate credit - Provide a link to the license, and indicate if changes were made. - ShareAlike - You must distribute your contributions under the same license as the original. - Keep intact - all notices that refer to this license, including copyright notices.

    Columns

    File: death .csv | Column name | Description | |:-------------------------------------------|:-------------------------------------------------------------------...

  6. Cancer County-Level

    • kaggle.com
    zip
    Updated Dec 3, 2022
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    The Devastator (2022). Cancer County-Level [Dataset]. https://www.kaggle.com/datasets/thedevastator/exploring-county-level-correlations-in-cancer-ra
    Explore at:
    zip(146998 bytes)Available download formats
    Dataset updated
    Dec 3, 2022
    Authors
    The Devastator
    Description

    Exploring County-Level Correlations in Cancer Rates and Trends

    A Multivariate Ordinary Least Squares Regression Model

    By Noah Rippner [source]

    About this dataset

    This dataset offers a unique opportunity to examine the pattern and trends of county-level cancer rates in the United States at the individual county level. Using data from cancer.gov and the US Census American Community Survey, this dataset allows us to gain insight into how age-adjusted death rate, average deaths per year, and recent trends vary between counties – along with other key metrics like average annual counts, met objectives of 45.5?, recent trends (2) in death rates, etc., captured within our deep multi-dimensional dataset. We are able to build linear regression models based on our data to determine correlations between variables that can help us better understand cancers prevalence levels across different counties over time - making it easier to target health initiatives and resources accurately when necessary or desired

    More Datasets

    For more datasets, click here.

    Featured Notebooks

    • 🚨 Your notebook can be here! 🚨!

    How to use the dataset

    This kaggle dataset provides county-level datasets from the US Census American Community Survey and cancer.gov for exploring correlations between county-level cancer rates, trends, and mortality statistics. This dataset contains records from all U.S counties concerning the age-adjusted death rate, average deaths per year, recent trend (2) in death rates, average annual count of cases detected within 5 years, and whether or not an objective of 45.5 (1) was met in the county associated with each row in the table.

    To use this dataset to its fullest potential you need to understand how to perform simple descriptive analytics which includes calculating summary statistics such as mean, median or other numerical values; summarizing categorical variables using frequency tables; creating data visualizations such as charts and histograms; applying linear regression or other machine learning techniques such as support vector machines (SVMs), random forests or neural networks etc.; differentiating between supervised vs unsupervised learning techniques etc.; reviewing diagnostics tests to evaluate your models; interpreting your findings; hypothesizing possible reasons and patterns discovered during exploration made through data visualizations ; Communicating and conveying results found via effective presentation slides/documents etc.. Having this understanding will enable you apply different methods of analysis on this data set accurately ad effectively.

    Once these concepts are understood you are ready start exploring this data set by first importing it into your visualization software either tableau public/ desktop version/Qlikview / SAS Analytical suite/Python notebooks for building predictive models by loading specified packages based on usage like Scikit Learn if Python is used among others depending on what tool is used . Secondly a brief description of the entire table's column structure has been provided above . Statistical operations can be carried out with simple queries after proper knowledge of basic SQL commands is attained just like queries using sub sets can also be performed with good command over selecting columns while specifying conditions applicable along with sorting operations being done based on specific attributes as required leading up towards writing python codes needed when parsing specific portion of data desired grouping / aggregating different categories before performing any kind of predictions / models can also activated create post joining few tables possible , when ever necessary once again varying across tools being used Thereby diving deep into analyzing available features determined randomly thus creating correlation matrices figures showing distribution relationships using correlation & covariance matrixes , thus making evaluations deducing informative facts since revealing trends identified through corresponding scatter plots from a given metric gathered from appropriate fields!

    Research Ideas

    • Building a predictive cancer incidence model based on county-level demographic data to identify high-risk areas and target public health interventions.
    • Analyzing correlations between age-adjusted death rate, average annual count, and recent trends in order to develop more effective policy initiatives for cancer prevention and healthcare access.
    • Utilizing the dataset to construct a machine learning algorithm that can predict county-level mortality rates based on socio-economic factors such as poverty levels and educational attainment rates

    Acknowledgements

    If you use this dataset i...

  7. Global Cancer Incidence

    • kaggle.com
    zip
    Updated Aug 23, 2024
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    Prathamesh keote (2024). Global Cancer Incidence [Dataset]. https://www.kaggle.com/datasets/shreyaskeote23/global-cancer-incidence
    Explore at:
    zip(8956 bytes)Available download formats
    Dataset updated
    Aug 23, 2024
    Authors
    Prathamesh keote
    License

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

    Description

    This dataset provides detailed information on global cancer incidence rates and numbers for both males and females in the year 2022. It includes data on various types of cancer, both including and excluding non-melanoma skin cancer (NMSC). The dataset is organized into two CSV files:

    Global cancer incidence in males and females (2022).csv: Contains detailed data for individual countries, including cancer incidence rates and numbers for both males and females, categorized by including and excluding NMSC. Overall global cancer incidence (2022).csv: Provides an aggregated view of global cancer incidence, summarizing key statistics across different regions and demographics.

  8. Cancer Dataset(Top 50 Populated Countries)

    • kaggle.com
    zip
    Updated Jan 17, 2025
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    Ankush Panday (2025). Cancer Dataset(Top 50 Populated Countries) [Dataset]. https://www.kaggle.com/datasets/ankushpanday1/cancer-datasettop-50-populated-countries
    Explore at:
    zip(23228945 bytes)Available download formats
    Dataset updated
    Jan 17, 2025
    Authors
    Ankush Panday
    License

    MIT Licensehttps://opensource.org/licenses/MIT
    License information was derived automatically

    Description

    This dataset provides a detailed view of global cancer trends across the 50 most populated countries. With 160,000 records, it encompasses a wide range of variables including cancer types, risk factors, healthcare expenditure, and environmental factors. The data is designed to assist researchers, healthcare policymakers, and data scientists in identifying patterns, predicting future trends, and crafting effective cancer control strategies.

  9. Rates of skin cancer in the countries with the most cases worldwide in 2022

    • statista.com
    Updated Apr 25, 2014
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    Statista (2014). Rates of skin cancer in the countries with the most cases worldwide in 2022 [Dataset]. https://www.statista.com/statistics/1032114/countries-with-the-greatest-rates-of-skin-cancer/
    Explore at:
    Dataset updated
    Apr 25, 2014
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    Worldwide
    Description

    In 2022, Australia had the fourth-highest total number of skin cancer cases worldwide and the highest age-standardized rate, with roughly 37 cases of skin cancer per 100,000 population. The graph illustrates the rate of skin cancer in the countries with the highest skin cancer rates worldwide in 2022.

  10. Cancer incidence in Europe in 2018, by country and type of cancer

    • statista.com
    Updated Oct 15, 2020
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    Statista (2020). Cancer incidence in Europe in 2018, by country and type of cancer [Dataset]. https://www.statista.com/statistics/1221283/cancer-incidence-by-country-and-type-of-cancer-europe/
    Explore at:
    Dataset updated
    Oct 15, 2020
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2018
    Area covered
    Europe
    Description

    In 2018, Hungary reported ***** new cases of colorectal cancer per 100,000 population, the highest number of colorectal cancer cases in Europe. In the same year, Belgium reported to have the highest number of new breast cancer cases (females only) with ***** cases per 100,000 population, while Sweden reported to have the highest number of new prostate cancer cases with ***** cases per 100,000 population. This statistic shows the number of new cancer cases per 100,000 population for selected types of cancers in European countries in 2018.

  11. Lung Cancer Mortality Datasets v2

    • kaggle.com
    zip
    Updated Jun 1, 2024
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    MasterDataSan (2024). Lung Cancer Mortality Datasets v2 [Dataset]. https://www.kaggle.com/datasets/masterdatasan/lung-cancer-mortality-datasets-v2
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    zip(81127029 bytes)Available download formats
    Dataset updated
    Jun 1, 2024
    Authors
    MasterDataSan
    Description

    This dataset contains data about lung cancer Mortality. This database is a comprehensive collection of patient information, specifically focused on individuals diagnosed with cancer. It is designed to facilitate the analysis of various factors that may influence cancer prognosis and treatment outcomes. The database includes a range of demographic, medical, and treatment-related variables, capturing essential details about each patient's condition and history.

    Key components of the database include:

    Demographic Information: Basic details about the patients such as age, gender, and country of residence. This helps in understanding the distribution of cancer cases across different populations and regions.

    Medical History: Information about each patient’s medical background, including family history of cancer, smoking status, Body Mass Index (BMI), cholesterol levels, and the presence of other health conditions such as hypertension, asthma, cirrhosis, and other cancers. This section is crucial for identifying potential risk factors and comorbidities.

    Cancer Diagnosis: Detailed data about the cancer diagnosis itself, including the date of diagnosis and the stage of cancer at the time of diagnosis. This helps in tracking the progression and severity of the disease.

    Treatment Details: Information regarding the type of treatment each patient received, the end date of the treatment, and the outcome (whether the patient survived or not). This is essential for evaluating the effectiveness of different treatment approaches.

    The structure of the database allows for in-depth analysis and research, making it possible to identify patterns, correlations, and potential causal relationships between various factors and cancer outcomes. It is a valuable resource for medical researchers, epidemiologists, and healthcare providers aiming to improve cancer treatment and patient care.

    id: A unique identifier for each patient in the dataset. age: The age of the patient at the time of diagnosis. gender: The gender of the patient (e.g., male, female). country: The country or region where the patient resides. diagnosis_date: The date on which the patient was diagnosed with lung cancer. cancer_stage: The stage of lung cancer at the time of diagnosis (e.g., Stage I, Stage II, Stage III, Stage IV). family_history: Indicates whether there is a family history of cancer (e.g., yes, no). smoking_status: The smoking status of the patient (e.g., current smoker, former smoker, never smoked, passive smoker). bmi: The Body Mass Index of the patient at the time of diagnosis. cholesterol_level: The cholesterol level of the patient (value). hypertension: Indicates whether the patient has hypertension (high blood pressure) (e.g., yes, no). asthma: Indicates whether the patient has asthma (e.g., yes, no). cirrhosis: Indicates whether the patient has cirrhosis of the liver (e.g., yes, no). other_cancer: Indicates whether the patient has had any other type of cancer in addition to the primary diagnosis (e.g., yes, no). treatment_type: The type of treatment the patient received (e.g., surgery, chemotherapy, radiation, combined). end_treatment_date: The date on which the patient completed their cancer treatment or died. survived: Indicates whether the patient survived (e.g., yes, no).

    This dataset contains artificially generated data with as close a representation of reality as possible. This data is free to use without any licence required.

    Good luck Gakusei!

  12. Cancer prevalence rate in Latin America & the Caribbean 2022, by country

    • statista.com
    Updated Nov 29, 2025
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    Statista (2025). Cancer prevalence rate in Latin America & the Caribbean 2022, by country [Dataset]. https://www.statista.com/statistics/991165/latin-america-caribbean-cancer-prevalence-rate/
    Explore at:
    Dataset updated
    Nov 29, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    Latin America, Caribbean
    Description

    In 2022, Uruguay had the highest age-standardized prevalence rate of all cancer types in Latin America and the Caribbean, with ***** cases per 100,000 population. Barbados and Cuba followed, with cancer prevalence rates of ******* and *******, respectively. That year, Uruguay also had the region's highest mortality death rate.

  13. OECD Cancer Statistics

    • johnsnowlabs.com
    csv
    Updated Jan 20, 2021
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    John Snow Labs (2021). OECD Cancer Statistics [Dataset]. https://www.johnsnowlabs.com/marketplace/oecd-cancer-statistics/
    Explore at:
    csvAvailable download formats
    Dataset updated
    Jan 20, 2021
    Dataset authored and provided by
    John Snow Labs
    Area covered
    OECD Members and Partners Countries
    Description

    This dataset contains cancer statistics for countries members of OECD (The Organization for Economic Co-operation and Development), for OECD key partners and countries in accession negotiations with OECD. The estimated values for the two types of indicators, cancer frequency and cancer incidence, cover the years 1998, 2000, 2002, 2008 and 2012.

  14. Global incidence of prostate cancer in developing and developed countries...

    • plos.figshare.com
    • datasetcatalog.nlm.nih.gov
    txt
    Updated Jun 1, 2023
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    Jeremy Y. C. Teoh; Hoyee W. Hirai; Jason M. W. Ho; Felix C. H. Chan; Kelvin K. F. Tsoi; Chi Fai Ng (2023). Global incidence of prostate cancer in developing and developed countries with changing age structures [Dataset]. http://doi.org/10.1371/journal.pone.0221775
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    txtAvailable download formats
    Dataset updated
    Jun 1, 2023
    Dataset provided by
    PLOShttp://plos.org/
    Authors
    Jeremy Y. C. Teoh; Hoyee W. Hirai; Jason M. W. Ho; Felix C. H. Chan; Kelvin K. F. Tsoi; Chi Fai Ng
    License

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

    Description

    To investigate the global incidence of prostate cancer with special attention to the changing age structures. Data regarding the cancer incidence and population statistics were retrieved from the International Agency for Research on Cancer in World Health Organization. Eight developing and developed jurisdictions in Asia and the Western countries were selected for global comparison. Time series were constructed based on the cancer incidence rates from 1988 to 2007. The incidence rate of the population aged ≥ 65 was adjusted by the increasing proportion of elderly population, and was defined as the “aging-adjusted incidence rate”. Cancer incidence and population were then projected to 2030. The aging-adjusted incidence rates of prostate cancer in Asia (Hong Kong, Japan and China) and the developing Western countries (Costa Rica and Croatia) had increased progressively with time. In the developed Western countries (the United States, the United Kingdom and Sweden), we observed initial increases in the aging-adjusted incidence rates of prostate cancer, which then gradually plateaued and even decreased with time. Projections showed that the aging-adjusted incidence rates of prostate cancer in Asia and the developing Western countries were expected to increase in much larger extents than the developed Western countries.

  15. H

    Data from: Cancer Mondial

    • data.niaid.nih.gov
    • dataverse.harvard.edu
    Updated Jul 13, 2011
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    (2011). Cancer Mondial [Dataset]. http://doi.org/10.7910/DVN/W4YJIK
    Explore at:
    Dataset updated
    Jul 13, 2011
    License

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

    Description

    Users can access data about cancer statistics, specifically incidence and mortality worldwide for the 27 major types of cancer. Background Cancer Mondial is maintained by the Section of Cancer Information (CIN) of International Agency for Research on Cancer by the World Health Organization. Users can access CIN databases including GLOBOCAN, CI5(Cancer Incidence in Five Continents), WHO, ACCIS(Automated Childhood Cancer Information System), ECO (European Cancer Observatory), NORDCAN and Survcan. User functionality Users can access a variety of databases. CIN Databases: GLOBOCAN provides acces s to the most recent estimates (for 2008) of the incidence of 27 major cancers and mortality from 27 major cancers worldwide. CI5 (Cancer Incidence in Five Continents) provides access to detailed information on the incidence of cancer recorded by cancer registries (regional or national) worldwide. WHO presents long time series of selected cancer mortality recorded in selected countries of the world. Collaborative projects: ACCIS (Automated Childhood Cancer Information System) provides access to data on cancer incidence and survival of children collected by European cancer registries. ECO (European Cancer Observatory) provides access to the estimates (for 2008) of the incidence of, and mortality f rom 25 major cancers in the countries of the European Union (EU-27). NORDCAN presents up-to-date long time series of cancer incidence, mortality, prevalence and survival from 40 cancers recorded by the Nordic countries. SurvCan presents cancer survival data from cancer registries in low and middle income regions of the world. Data Notes Data is available in different formats depending on which type of data is accessed. Some data is available in table, PDF, and html formats. Detailed information about the data is available.

  16. f

    Data from: Cancer Mortality by Country of Birth, Sex, and Socioeconomic...

    • datasetcatalog.nlm.nih.gov
    • plos.figshare.com
    Updated Mar 28, 2014
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    Moradi, Tahereh; Abdoli, Gholamreza; Bottai, Matteo (2014). Cancer Mortality by Country of Birth, Sex, and Socioeconomic Position in Sweden, 1961–2009 [Dataset]. https://datasetcatalog.nlm.nih.gov/dataset?q=0001245500
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    Dataset updated
    Mar 28, 2014
    Authors
    Moradi, Tahereh; Abdoli, Gholamreza; Bottai, Matteo
    Area covered
    Sweden
    Description

    In 2010, cancer deaths accounted for more than 15% of all deaths worldwide, and this fraction is estimated to rise in the coming years. Increased cancer mortality has been observed in immigrant populations, but a comprehensive analysis by country of birth has not been conducted. We followed all individuals living in Sweden between 1961 and 2009 (7,109,327 men and 6,958,714 women), and calculated crude cancer mortality rates and age-standardized rates (ASRs) using the world population for standardization. We observed a downward trend in all-site ASRs over the past two decades in men regardless of country of birth but no such trend was found in women. All-site cancer mortality increased with decreasing levels of education regardless of sex and country of birth (p for trend <0.001). We also compared cancer mortality rates among foreign-born (13.9%) and Sweden-born (86.1%) individuals and determined the effect of education level and sex estimated by mortality rate ratios (MRRs) using multivariable Poisson regression. All-site cancer mortality was slightly higher among foreign-born than Sweden-born men (MRR = 1.05, 95% confidence interval 1.04–1.07), but similar mortality risks was found among foreign-born and Sweden-born women. Men born in Angola, Laos, and Cambodia had the highest cancer mortality risk. Women born in all countries except Iceland, Denmark, and Mexico had a similar or smaller risk than women born in Sweden. Cancer-specific mortality analysis showed an increased risk for cervical and lung cancer in both sexes but a decreased risk for colon, breast, and prostate cancer mortality among foreign-born compared with Sweden-born individuals. Further studies are required to fully understand the causes of the observed inequalities in mortality across levels of education and countries of birth.

  17. M

    Breast Cancer Statistics 2025 By Types, Risks, Ratio

    • media.market.us
    Updated Jan 13, 2025
    + more versions
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    Market.us Media (2025). Breast Cancer Statistics 2025 By Types, Risks, Ratio [Dataset]. https://media.market.us/breast-cancer-statistics/
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    Dataset updated
    Jan 13, 2025
    Dataset authored and provided by
    Market.us Media
    License

    https://media.market.us/privacy-policyhttps://media.market.us/privacy-policy

    Time period covered
    2022 - 2032
    Description

    Editor’s Choice

    • Global Breast Cancer Market size is expected to be worth around USD 49.2 Bn by 2032 from USD 19.8 Bn in 2022, growing at a CAGR of 9.8% during the forecast period from 2022 to 2032.
    • Breast cancer is the most common cancer among women worldwide. In 2020, there were about 2.3 million new cases of breast cancer diagnosed globally.
    • Breast cancer is the leading cause of cancer-related deaths in women. In 2020, it was responsible for approximately 685,000 deaths worldwide.
    • The survival rate of breast cancer has improved over the years. In the United States, the overall five-year survival rate of breast cancer is around 90%.
    • The American Cancer Society recommends annual mammograms starting at age 40 for women at average risk.
    • Although rare, breast cancer also occurs in men. Less than 1% of breast cancer cases are diagnosed in males.

    (Source: WHO, American Cancer Society)

    https://market.us/wp-content/uploads/2023/04/Breast-Cancer-Market-Value.jpg" alt="">

  18. World Cancer Deaths (1990-2019)

    • kaggle.com
    zip
    Updated Jul 4, 2023
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    Mohammad Kayser (2023). World Cancer Deaths (1990-2019) [Dataset]. https://www.kaggle.com/datasets/mohammadkausar/world-cancer-deaths-1990-2019
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    zip(315258 bytes)Available download formats
    Dataset updated
    Jul 4, 2023
    Authors
    Mohammad Kayser
    Description

    This dataset contains Total deaths for 29 cancers types under countries and years (1990-2019) you can use this datset for visulizing and gaining insights and find trends and relationship among cancers also with years and countries

    this data set is csv file format

    the columns are , Entity - Country Code - Country Code Years - 1990-2019 followed by all cancers types and thier deaths

  19. global_cancer_patients_2015_2024

    • kaggle.com
    zip
    Updated Apr 14, 2025
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    Zahid Feroze (2025). global_cancer_patients_2015_2024 [Dataset]. https://www.kaggle.com/datasets/zahidmughal2343/global-cancer-patients-2015-2024
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    zip(1261049 bytes)Available download formats
    Dataset updated
    Apr 14, 2025
    Authors
    Zahid Feroze
    License

    Attribution-NonCommercial-ShareAlike 4.0 (CC BY-NC-SA 4.0)https://creativecommons.org/licenses/by-nc-sa/4.0/
    License information was derived automatically

    Description

    đź“„ Dataset Description: This dataset contains global cancer patient data reported from 2015 to 2024, designed to simulate the key factors influencing cancer diagnosis, treatment, and survival. It includes a variety of features that are commonly studied in the medical field, such as age, gender, cancer type, environmental factors, and lifestyle behaviors. The dataset is perfect for:

    Exploratory Data Analysis (EDA)

    Multiple Linear Regression and other modeling tasks

    Feature Selection and Correlation Analysis

    Predictive Modeling for cancer severity, treatment cost, and survival prediction

    Data Visualization and creating insightful graphs

    Key Features: Age: Patient's age (20-90 years)

    Gender: Male, Female, or Other

    Country/Region: Country or region of the patient

    Cancer Type: Various types of cancer (e.g., Breast, Lung, Colon)

    Cancer Stage: Stage 0 to Stage IV

    Risk Factors: Includes genetic risk, air pollution, alcohol use, smoking, obesity, etc.

    Treatment Cost: Estimated cost of cancer treatment (in USD)

    Survival Years: Years survived since diagnosis

    Severity Score: A composite score representing cancer severity

    This dataset provides a broad view of global cancer trends, making it an ideal resource for those learning data science, machine learning, and statistical analysis in healthcare.

  20. Breast cancer mortality rate for women in Europe in 2022, by country

    • statista.com
    Updated Feb 24, 2024
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    Statista (2024). Breast cancer mortality rate for women in Europe in 2022, by country [Dataset]. https://www.statista.com/statistics/1452371/breast-cancer-mortality-rate-for-women-in-europe-by-country/
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    Dataset updated
    Feb 24, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2022
    Area covered
    European Union
    Description

    In 2022, the mortality rate of breast cancer in women in Europe was **** per 100,000 women. Cyprus had the highest mortality rate at **** per 100,000, followed by Slovakia with **** per 100,000 women. Conversely, Spain had the lowest mortality rate at **** per 100,000. This statistic depicts the mortality rate of breast cancer in Europe in 2022 in women population, by country.

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Statista (2025). Cancer incidence in European countries in 2022 [Dataset]. https://www.statista.com/statistics/456786/cancer-incidence-europe/
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Cancer incidence in European countries in 2022

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Dataset updated
Nov 29, 2025
Dataset authored and provided by
Statistahttp://statista.com/
Time period covered
2022
Area covered
Europe, EU
Description

In 2022, the highest cancer rate for men and women among European countries was in Denmark with 728.5 cancer cases per 100,000 population. Ireland and the Netherlands followed, with 641.6 and 641.4 people diagnosed with cancer per 100,000 population, respectively.
Lung cancer Lung cancer is the deadliest type of cancer worldwide, and in Europe, Germany was the country with the highest number of lung cancer deaths in 2022, with 47.7 thousand deaths. However, when looking at the incidence rate of lung cancer, Hungary had the highest for both males and females, with 138.4 and 72.3 cases per 100,000 population, respectively.
Breast cancer Breast cancer is the most common type of cancer among women with an incidence rate of 83.3 cases per 100,000 population in Europe in 2022. Cyprus was the country with the highest incidence of breast cancer, followed by Belgium and France. The mortality rate due to breast cancer was 34.8 deaths per 100,000 population across Europe, and Cyprus was again the country with the highest figure.

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