83 datasets found
  1. U.S. internet users addicted to social media 2019, by age group

    • statista.com
    Updated Aug 13, 2019
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    Statista (2019). U.S. internet users addicted to social media 2019, by age group [Dataset]. https://www.statista.com/statistics/1081292/social-media-addiction-by-age-usa/
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    Dataset updated
    Aug 13, 2019
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Apr 2019
    Area covered
    United States
    Description

    Overall, 40 percent of U.S. online users aged 18 to 22 years reported feeling addicted to social media. During the April 2019 survey, five percent of respondents from that age group stated that they felt the statement "I am addicted to social media" described them completely.

  2. UK teens on being addicted to social media 2023, by gender

    • statista.com
    Updated Jan 2, 2024
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    Statista (2024). UK teens on being addicted to social media 2023, by gender [Dataset]. https://www.statista.com/statistics/1440288/teens-uk-social-media-addiction-gender/
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    Dataset updated
    Jan 2, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2023
    Area covered
    United Kingdom
    Description

    According to a 2023 survey conducted in the United Kingdom, 48 percent of social media users aged between 16 and 18 years reported feeling addicted to social media. Feelings of addiction were higher amongst female teens than male teens, with 57 percent of girls in the UK saying they thought they were addicted to online platforms. In general, social media can be difficult for teens to navigate, partly due to pressure to create the perfect image or partake in online challenges.

  3. d

    Data for: Digital Addiction

    • dataone.org
    • dataverse.harvard.edu
    Updated Jan 12, 2024
    + more versions
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    Allcott, Hunt; Gentzkow, Matthew; Song, Lena (2024). Data for: Digital Addiction [Dataset]. http://doi.org/10.7910/DVN/GN636M
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    Dataset updated
    Jan 12, 2024
    Dataset provided by
    Harvard Dataverse
    Authors
    Allcott, Hunt; Gentzkow, Matthew; Song, Lena
    Description

    Many have argued that digital technologies such as smartphones and social media are addictive. We develop an economic model of digital addiction and estimate it using a randomized experiment. Temporary incentives to reduce social media use have persistent effects, suggesting social media are habit forming. Allowing people to set limits on their future screen time substantially reduces use, suggesting self-control problems. Additional evidence suggests people are inattentive to habit formation and partially unaware of self-control problems. Looking at these facts through the lens of our model suggests that self-control problems cause 31 percent of social media use.

  4. U.S. teen girls feeling addicted to using social media 2022, by frequency

    • statista.com
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    Statista, U.S. teen girls feeling addicted to using social media 2022, by frequency [Dataset]. https://www.statista.com/statistics/1384158/us-teen-girls-social-media-addiction-by-frequency/
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    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Nov 11, 2022 - Dec 5, 2022
    Area covered
    United States
    Description

    According to an online survey conducted in 2022 in the United States, 45 percent of teen girls said they felt 'addicted' to TikTok, or ended up using the platform for a longer period of time than they originally wanted. Of these respondents, 32 percent reported using the app on a daily basis. Almost half of respondents stated that they felt addicted to YouTube, or used it for longer than intended, with 37 percent of these respondents saying they used the platform daily.

  5. Social Media and Mental Health

    • kaggle.com
    zip
    Updated Jul 18, 2023
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    SouvikAhmed071 (2023). Social Media and Mental Health [Dataset]. https://www.kaggle.com/datasets/souvikahmed071/social-media-and-mental-health
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    zip(10944 bytes)Available download formats
    Dataset updated
    Jul 18, 2023
    Authors
    SouvikAhmed071
    License

    Open Database License (ODbL) v1.0https://www.opendatacommons.org/licenses/odbl/1.0/
    License information was derived automatically

    Description

    This dataset was originally collected for a data science and machine learning project that aimed at investigating the potential correlation between the amount of time an individual spends on social media and the impact it has on their mental health.

    The project involves conducting a survey to collect data, organizing the data, and using machine learning techniques to create a predictive model that can determine whether a person should seek professional help based on their answers to the survey questions.

    This project was completed as part of a Statistics course at a university, and the team is currently in the process of writing a report and completing a paper that summarizes and discusses the findings in relation to other research on the topic.

    The following is the Google Colab link to the project, done on Jupyter Notebook -

    https://colab.research.google.com/drive/1p7P6lL1QUw1TtyUD1odNR4M6TVJK7IYN

    The following is the GitHub Repository of the project -

    https://github.com/daerkns/social-media-and-mental-health

    Libraries used for the Project -

    Pandas
    Numpy
    Matplotlib
    Seaborn
    Sci-kit Learn
    
  6. Mental health effects of social media for users in the U.S. 2024

    • statista.com
    Updated Mar 15, 2024
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    Statista (2024). Mental health effects of social media for users in the U.S. 2024 [Dataset]. https://www.statista.com/statistics/1369032/mental-health-social-media-effect-us-users/
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    Dataset updated
    Mar 15, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Mar 13, 2024
    Area covered
    United States
    Description

    According to a March 2024 survey conducted in the United States, 32 percent of adults reported feeling that social media had neither a positive nor negative effect on their own mental health. Only seven percent of social media users said that online platforms had a very positive effect on their mental health, while 12 percent of users said it had a very negative impact. Furthermore, 22 percent of respondents said social media had a somewhat negative effect on their mental health. Is social media addictive? A 2023 survey of individuals between 11 and 59 years old in the United States found that over 73 percent of TikTok users agreed that the platform was addictive. Furthermore, nearly 27 percent of those surveyed reported experiencing negative psychological effects related to TikTok use. Users belonging to Generation Z were the most likely to say that TikTok is addictive, yet millennials felt the negative effects of using the app more so than Gen Z. In the U.S., it is also not uncommon for social media users to take breaks from using online platforms, and as of March 2024, over a third of adults in the country had done so. Following mental health-related content Although online users may be aware of the negative and addictive aspects of social media, it is also a useful tool for finding supportive content. In a global survey conducted in 2023, 32 percent of social media users followed therapists and mental health professionals on social media. Overall, 24 percent of respondents said that they followed people on social media if they had the same condition as they did. Between January 2020 and March 2023, British actress and model Cara Delevingne was the celebrity mental health activist with the highest growth in searches tying her name to the topic.

  7. Share of youth with social media addiction MENA 2023

    • statista.com
    Updated Jun 15, 2023
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    Statista (2023). Share of youth with social media addiction MENA 2023 [Dataset]. https://www.statista.com/statistics/1448751/mena-share-of-youth-with-social-media-addiction-2023/
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    Dataset updated
    Jun 15, 2023
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Mar 2023 - Apr 2023
    Area covered
    MENA
    Description

    According to a survey on the lifestyles of Arab youth and their dependence on social media in April of 2023, ** percent of young people in the Middle East and North Africa (MENA) region had difficulty disconnecting from social media. Only ***** percent of survey participants said they do not find it difficult to disconnect from social media, while ** percent were neutral.

  8. S

    Internet Addiction Statistics 2025: Global Rates, Causes & Solutions

    • sqmagazine.co.uk
    Updated Oct 7, 2025
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    SQ Magazine (2025). Internet Addiction Statistics 2025: Global Rates, Causes & Solutions [Dataset]. https://sqmagazine.co.uk/internet-addiction-statistics/
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    Dataset updated
    Oct 7, 2025
    Dataset authored and provided by
    SQ Magazine
    License

    https://sqmagazine.co.uk/privacy-policy/https://sqmagazine.co.uk/privacy-policy/

    Time period covered
    Jan 1, 2024 - Dec 31, 2025
    Area covered
    Global
    Description

    In the quiet moments between meetings, on the bus ride home, or just before bedtime, many of us instinctively reach for our phones. What starts as a quick scroll through headlines or social feeds often spirals into hours of unintentional browsing. This growing pattern reflects a modern struggle: internet addiction....

  9. U.S. internet users addicted to social media 2019, by gender

    • statista.com
    Updated Aug 13, 2019
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    Statista (2019). U.S. internet users addicted to social media 2019, by gender [Dataset]. https://www.statista.com/statistics/1081269/social-media-addiction-by-gender-usa/
    Explore at:
    Dataset updated
    Aug 13, 2019
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Apr 2019
    Area covered
    United States
    Description

    Overall, 34 percent of female online users in the United States reported feeling addicted to social media. During the April 2019 survey, 11 percent of female respondents stated that they felt the statement "I am addicted to social media" described them completely.

  10. T

    Technology Addiction Statistics 2025: Data That Reveals the Digital Crisis

    • techkv.com
    Updated Sep 22, 2025
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    TechKV (2025). Technology Addiction Statistics 2025: Data That Reveals the Digital Crisis [Dataset]. https://techkv.com/technology-addiction-statistics/
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    Dataset updated
    Sep 22, 2025
    Dataset authored and provided by
    TechKV
    License

    https://techkv.com/privacy-policy/https://techkv.com/privacy-policy/

    Time period covered
    Jan 1, 2024 - Dec 31, 2025
    Area covered
    Global
    Description

    Technology’s pull often feels impossible to resist. More than half of Americans report an almost daily reliance on smartphones, the internet, and social media, affecting everything from sleep to relationships. From health care settings where digital detox programs help patients reclaim balance, to corporate wellness initiatives that curb online burnout,...

  11. s

    YouTube Usage

    • searchlogistics.com
    Updated Apr 1, 2025
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    (2025). YouTube Usage [Dataset]. https://www.searchlogistics.com/learn/statistics/social-media-user-statistics/
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    Dataset updated
    Apr 1, 2025
    License

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

    Description

    YouTube gets an average of 14.3 billion total worldwide visits every month.

  12. s

    Twitter Users

    • searchlogistics.com
    Updated Apr 1, 2025
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    (2025). Twitter Users [Dataset]. https://www.searchlogistics.com/learn/statistics/social-media-user-statistics/
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    Dataset updated
    Apr 1, 2025
    License

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

    Description

    The average Twitter user spends 5.1 hours per month on the platform.

  13. s

    TikTok Users

    • searchlogistics.com
    Updated Apr 1, 2025
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    (2025). TikTok Users [Dataset]. https://www.searchlogistics.com/learn/statistics/social-media-user-statistics/
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    Dataset updated
    Apr 1, 2025
    License

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

    Description

    Users spend an average of 19.6 hours per month on TikTok alone. This works out to be approximately 39 minutes per day.

  14. Social media addiction among children and adolescents in Poland 2021

    • statista.com
    Updated Jan 13, 2022
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    Statista (2022). Social media addiction among children and adolescents in Poland 2021 [Dataset]. https://www.statista.com/statistics/1344449/poland-social-media-addiction-among-kids/
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    Dataset updated
    Jan 13, 2022
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Jun 2021
    Area covered
    Poland
    Description

    The older a child gets in Poland, the more dependent they become on social media. In 2021, ** percent of young people required help due to social media addiction. Furthermore, nearly one in **** neglected other activities due to social media use.

  15. Descriptive statistics for the outcome variables.

    • plos.figshare.com
    xls
    Updated Sep 12, 2025
    + more versions
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    Anna-Stiina Wallinheimo; Simon L. Evans (2025). Descriptive statistics for the outcome variables. [Dataset]. http://doi.org/10.1371/journal.pone.0331961.t001
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    xlsAvailable download formats
    Dataset updated
    Sep 12, 2025
    Dataset provided by
    PLOShttp://plos.org/
    Authors
    Anna-Stiina Wallinheimo; Simon L. Evans
    License

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

    Description

    Evening-types are at higher risk of problematic smartphone use and addiction to social media, but little is known about the possible mediating factors. Given the rising prevalence and broad negative impacts of smartphone and social media addiction, these factors require identification. Young adults (N = 407) aged 18–25, with an average age of 19.8 years, completed a battery of validated measures online. We tested mental health (anxiety and depression symptoms), loneliness, and poorer sleep quality as potential mediators in the relationships between eveningness and problematic smartphone use and social media addiction. As expected, evening types had higher prevalence of problematic smartphone use and social media addiction. Eveningness was also associated with higher anxiety and depression symptoms, loneliness, and poorer sleep quality. Two separate parallel mediation analyses were then conducted, with these three factors entered simultaneously as mediators. For problematic smartphone use, a partial mediation occurred, with loneliness as the significant mediating variable. For social media addiction, both loneliness and anxiety were significant mediators, and a full mediation was found. These important findings point to loneliness and anxiety as crucial explanatory variables for problematic technology use in young adults, suggesting that young adult evening types resort to smartphone/social media use as a dysfunctional coping strategy for loneliness and anxiety. Given the prevalence of problematic smartphone use and social media addiction amongst young people worldwide, and their wide-ranging negative impacts, this has important implications for prevention and intervention strategies to enhance young adults’ mental health, functioning, and well-being.

  16. d

    Data from: Cross-sectional study of Facebook addiction in a sample of...

    • search.dataone.org
    • data.niaid.nih.gov
    • +2more
    Updated Apr 24, 2025
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    Alok Atreya; Samata Nepal; Prakash Thapa (2025). Cross-sectional study of Facebook addiction in a sample of Nepalese population [Dataset]. http://doi.org/10.5061/dryad.83bk3j9pv
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    Dataset updated
    Apr 24, 2025
    Dataset provided by
    Dryad Digital Repository
    Authors
    Alok Atreya; Samata Nepal; Prakash Thapa
    Time period covered
    Oct 5, 2020
    Area covered
    Nepal
    Description

    Background: Facebook addiction is said to occur when an individual spends an excessive amount of time on Facebook, disrupting one’s daily activities and social life. The present study aimed to find out the level of Facebook addiction in the Nepalese context and briefly discuss the crimes associated with its unintended use. Methods: A descriptive cross-sectional study was conducted in the Department of Forensic Medicine of Lumbini Medical College. The study instrument was the Bergen Facebook Addiction Scale typed into a Google Form and sent randomly to Facebook contacts of the authors. The responses were downloaded in a Microsoft Excel spreadsheet and analyzed using Statistical Package for Social Sciences version 16. Results: The study consisted of 103 Nepalese participants, of which 54 (52.42%) were males and 49 females (47.58%). There were 11 participants (10.68%) who had more than one Facebook account. When different approaches were applied it was observed that 8.73% (n=9) to 39.80% (...

  17. Data from: Dark Side Of Social Media

    • kaggle.com
    zip
    Updated Jul 8, 2024
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    Muhammad Roshan Riaz (2024). Dark Side Of Social Media [Dataset]. https://www.kaggle.com/datasets/muhammadroshaanriaz/time-wasters-on-social-media/code
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    zip(36893 bytes)Available download formats
    Dataset updated
    Jul 8, 2024
    Authors
    Muhammad Roshan Riaz
    License

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

    Description

    Time-Wasters on Social Media Dataset Overview The "Time-Wasters on Social Media" dataset offers a detailed look into user behavior and engagement with social media platforms. It captures various attributes that can help analyze the impact of social media on users' time and productivity. This dataset is valuable for researchers, marketers, and social scientists aiming to understand the nuances of social media consumption.

    This dataset was generated using synthetic data techniques with the help of NumPy and pandas. The data is artificially created to simulate real-world social media usage patterns for research and analysis purposes.

    Columns Description UserID: A unique identifier assigned to each user. Age: The age of the user. Gender: The gender of the user. Location: The geographical location of the user. Income: The annual income of the user. Debt: Tells If the is in Debt or Not. Owns Property: Indicates whether the user owns any property (Yes/No). Profession: The profession or job title of the user. Demographics: Additional demographic information about the user (Rural or Urban Life). Platform: The social media platform used by the user (e.g., Facebook, Instagram, TikTok). Total Time Spent: The total time the user has spent on the platform. Number of Sessions: The number of sessions the user has had on the platform. Video ID: A unique identifier for each video watched. Video Category: The category of the video watched (e.g., Entertainment, Gaming, Pranks, Vlog). Video Length: The length of the video watched. Engagement: The engagement level of the user with the video (e.g., Likes, Comments). Importance Score: A score representing the perceived importance of the video to the user. Time Spent On Video: The amount of time the user spent watching the video. Number of Videos Watched: The total number of videos watched by the user. Scroll Rate: The rate at which the user scrolls through content. Frequency: How frequently the user logs into the platform. Productivity Loss: The amount of productivity lost due to time spent on social media. Satisfaction: The satisfaction level of the user with the content consumed. Watch Reason: The reason why the user watched the video (e.g., Entertainment, Information). DeviceType: The type of device used to access the platform (e.g., Mobile, Desktop). OS: The operating system of the device used. Watch Time: The specific time of day when the user watched the video. Self Control: The user's self-assessed level of self-control while using the platform. Addiction Level: The user's self-assessed level of addiction to social media. Current Activity: The activity the user was engaged in before using the platform. ConnectionType: The type of internet connection used by the user (e.g., Wi-Fi, Mobile Data).

    Usage This dataset can be utilized to:

    Analyze patterns in social media usage. Understand demographic differences in platform engagement. Examine the impact of social media on productivity. Develop strategies to improve user engagement and satisfaction. Study the correlation between social media usage and various demographic factors.

  18. s

    Snapchat Users

    • searchlogistics.com
    Updated Apr 1, 2025
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    (2025). Snapchat Users [Dataset]. https://www.searchlogistics.com/learn/statistics/social-media-user-statistics/
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    Dataset updated
    Apr 1, 2025
    License

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

    Description

    Snapchat now boasts over 319 million daily active users. That means it’s one of the most engaging platforms. Snapchat currently has a total user base of 800 million.

  19. s

    Snapchat Demographics

    • searchlogistics.com
    Updated Apr 1, 2025
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    (2025). Snapchat Demographics [Dataset]. https://www.searchlogistics.com/learn/statistics/social-media-user-statistics/
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    Dataset updated
    Apr 1, 2025
    License

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

    Description

    Snapchat has a reach into 75% of the millenial and Gen Z audience.

  20. Share of youth experiencing social media addiction MENA 2023, by region

    • statista.com
    Updated Nov 26, 2025
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    Statista (2025). Share of youth experiencing social media addiction MENA 2023, by region [Dataset]. https://www.statista.com/statistics/1448833/mena-share-of-youth-with-social-media-addiction-by-region-2023/
    Explore at:
    Dataset updated
    Nov 26, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Mar 2023 - Apr 2023
    Area covered
    MENA
    Description

    According to a survey on the lifestyles of Arab youth and their dependence on social media in April 2023, ** percent of young adults in the Gulf Cooperation Council (GCC) countries strongly or somewhat agree that they find it difficult to disconnect from social media. This is higher than the regional average of the Middle East and North Africa (MENA) of ** percent who found it difficult to disconnect from social media.

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Statista (2019). U.S. internet users addicted to social media 2019, by age group [Dataset]. https://www.statista.com/statistics/1081292/social-media-addiction-by-age-usa/
Organization logo

U.S. internet users addicted to social media 2019, by age group

Explore at:
11 scholarly articles cite this dataset (View in Google Scholar)
Dataset updated
Aug 13, 2019
Dataset authored and provided by
Statistahttp://statista.com/
Time period covered
Apr 2019
Area covered
United States
Description

Overall, 40 percent of U.S. online users aged 18 to 22 years reported feeling addicted to social media. During the April 2019 survey, five percent of respondents from that age group stated that they felt the statement "I am addicted to social media" described them completely.

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