100+ datasets found
  1. b

    App Store Data (2025)

    • businessofapps.com
    Updated Jan 12, 2021
    + more versions
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    Business of Apps (2021). App Store Data (2025) [Dataset]. https://www.businessofapps.com/data/app-stores/
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    Dataset updated
    Jan 12, 2021
    Dataset authored and provided by
    Business of Apps
    License

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

    Description

    Apple App Store Key StatisticsApps & Games in the Apple App StoreApps in the Apple App StoreGames in the Apple App StoreMost Popular Apple App Store CategoriesPaid vs Free Apps in Apple App...

  2. d

    Apple Appstore & Google Play Store data

    • datarade.ai
    .json, .xml, .csv
    Updated Oct 15, 2021
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    Datandard (2021). Apple Appstore & Google Play Store data [Dataset]. https://datarade.ai/data-products/apple-appstore-google-play-store-data-cleardata
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    .json, .xml, .csvAvailable download formats
    Dataset updated
    Oct 15, 2021
    Dataset authored and provided by
    Datandard
    Area covered
    Lao People's Democratic Republic, Iran (Islamic Republic of), Tonga, Spain, South Georgia and the South Sandwich Islands, Rwanda, Andorra, Libya, Zambia, Belize
    Description

    Get access to information about all apps in the Google Playstore to understand your competitors, market to app developers etc. This dataset includes all the fields available in the play store such as:

    • Name, description, rating information etc.
    • Technical information such as size, app version etc.
    • Permissions.
    • Developer information.
    • Contact information.
    • Parsed app-ads.txt information for publisher domains.
    • Reviews (more than 100 million reviews available)
  3. Data from: Apple App Store Dataset

    • opendatabay.com
    .other
    Updated Jun 7, 2025
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    Bright Data (2025). Apple App Store Dataset [Dataset]. https://www.opendatabay.com/data/premium/cd5a7748-e9da-4d59-96cd-96a0c95f7994
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    .otherAvailable download formats
    Dataset updated
    Jun 7, 2025
    Dataset authored and provided by
    Bright Datahttps://brightdata.com/
    Area covered
    Website Analytics & User Experience
    Description

    Apple App Store dataset to explore detailed information on app popularity, user feedback, and monetization features. Popular use cases include market trend analysis, app performance evaluation, and consumer behavior insights in the mobile app ecosystem.

    Use our Apple App Store dataset to gain comprehensive insights into the mobile app ecosystem, including app popularity, user ratings, monetization features, and user feedback. This dataset covers various aspects of apps, such as descriptions, categories, and download metrics, offering a full picture of app performance and trends.

    Tailored for marketers, developers, and industry analysts, this dataset allows you to track market trends, identify emerging apps, and refine promotional strategies. Whether you're optimizing app development, analyzing competitive landscapes, or forecasting market opportunities, the Apple App Store dataset is an essential tool for making data-driven decisions in the ever-evolving mobile app industry.

    Dataset Features

    • url: The URL linking to the app’s page on the Apple App Store.
    • title: The name of the app.
    • sub_title: A brief subtitle or tagline for the app.
    • developer: The name of the entity or individual that developed the app.
    • top_charts: Indicates if the app appears in top charts.
    • monetization_features: Information on monetization aspects (such as in-app purchases or advertisements).
    • image: A reference to the main app image.
    • screenshots: Contains screenshot images of the app.
    • description: Detailed app description outlining main features.
    • what_new: Details on the latest updates or new features.
    • rating: The overall rating based on user reviews.
    • number_of_raters: The total number of users who have rated the app.
    • reviews_by_stars: Breakdown of the number of reviews by star rating.
    • reviews: An aggregation of user reviews.
    • events: Any associated events or promotions.
    • data_linked_to_you: Indicates if any data is linked to the user.
    • seller: The entity responsible for selling or distributing the app.
    • category: The category or genre of the app.
    • languages: Languages supported by the app.
    • copyright: Copyright information provided by the developer.
    • size: The file size of the app.
    • compatibility: Device or OS compatibility details.
    • age_rating: The recommended age rating for the app.
    • price: The price of the app.
    • In_app_purchases: Details on in-app purchase options.
    • support: Information related to app support.
    • more_by_this_developer: Suggestions for other apps by the same developer.
    • you_might_also_like: Recommendations for similar apps.
    • app_support: Additional support details.
    • privacy_policy: Link or reference to the app’s privacy policy.
    • developer_website: The website of the app developer.
    • featured_in: Information on any features or showcases the app has being part of.
    • country: The country from which the app’s data was sourced.
    • timestamp: A timestamp indicating when the data record was last updated.
    • latest_app_version: The most recent version of the app available.
    • app_id: A unique identifier for the app.

    Distribution

    • Data Volume: 36 Columns and 68M Rows
    • Format: CSV

    Usage

    This dataset is versatile and can be used for various applications: - Market Analysis: Analyze app pricing strategies, monetization features, and category distribution to understand market trends and opportunities in the App Store. This can help developers and businesses make informed decisions about their app development and pricing strategies. - User Experience Research: Study the relationship between app ratings, number of reviews, and app features to understand what drives user satisfaction. The detailed review data and ratings can provide insights into user preferences and pain points. - Competitive Intelligence: Track and analyze apps within specific categories, comparing features, pricing, and user engagement metrics to identify successful patterns and market gaps. Particularly useful for developers planning new apps or improving existing ones. - Performance Prediction: Build predictive models using features like app size, category, pricing, and language support to forecast potential app success metrics. This can help in making data-driven decisions during app development. - Localization Strategy: Analyze the languages supported and regional performance to inform decisions about app localization and international market expansion.

    Coverage

    • Geographic Coverage: Global

    License

    CUSTOM Please review the respective licenses below: 1. Data Provider's License - Bright Data Master Service Agreement

    Who Can Use It

    • Data Scientists: Can leverage this dataset for training machine learning algorithms and building predictive models concerning app tr
  4. c

    Unlocking User Sentiment: The App Store Reviews Dataset

    • crawlfeeds.com
    json, zip
    Updated Jun 20, 2025
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    Crawl Feeds (2025). Unlocking User Sentiment: The App Store Reviews Dataset [Dataset]. https://crawlfeeds.com/datasets/app-store-reviews-dataset
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    json, zipAvailable download formats
    Dataset updated
    Jun 20, 2025
    Dataset authored and provided by
    Crawl Feeds
    License

    https://crawlfeeds.com/privacy_policyhttps://crawlfeeds.com/privacy_policy

    Description

    This dataset offers a focused and invaluable window into user perceptions and experiences with applications listed on the Apple App Store. It is a vital resource for app developers, product managers, market analysts, and anyone seeking to understand the direct voice of the customer in the dynamic mobile app ecosystem.

    Dataset Specifications:

    • Investment: $45.0
    • Status: Published and immediately available.
    • Category: Ratings and Reviews Data
    • Format: Compressed ZIP archive containing JSON files, ensuring easy integration into your analytical tools and platforms.
    • Volume: Comprises 10,000 unique app reviews, providing a robust sample for qualitative and quantitative analysis of user feedback.
    • Timeliness: Last crawled: (This field is blank in your provided info, which means its recency is currently unknown. If this were a real product, specifying this would be critical for its value proposition.)

    Richness of Detail (11 Comprehensive Fields):

    Each record in this dataset provides a detailed breakdown of a single App Store review, enabling multi-dimensional analysis:

    1. Review Content:

      • review: The full text of the user's written feedback, crucial for Natural Language Processing (NLP) to extract themes, sentiment, and common keywords.
      • title: The title given to the review by the user, often summarizing their main point.
      • isEdited: A boolean flag indicating whether the review has been edited by the user since its initial submission. This can be important for tracking evolving sentiment or understanding user behavior.
    2. Reviewer & Rating Information:

      • username: The public username of the reviewer, allowing for analysis of engagement patterns from specific users (though not personally identifiable).
      • rating: The star rating (typically 1-5) given by the user, providing a quantifiable measure of satisfaction.
    3. App & Origin Context:

      • app_name: The name of the application being reviewed.
      • app_id: A unique identifier for the application within the App Store, enabling direct linking to app details or other datasets.
      • country: The country of the App Store storefront where the review was left, allowing for geographic segmentation of feedback.
    4. Metadata & Timestamps:

      • _id: A unique identifier for the specific review record in the dataset.
      • crawled_at: The timestamp indicating when this particular review record was collected by the data provider (Crawl Feeds).
      • date: The original date the review was posted by the user on the App Store.

    Expanded Use Cases & Analytical Applications:

    This dataset is a goldmine for understanding what users truly think and feel about mobile applications. Here's how it can be leveraged:

    • Product Development & Improvement:

      • Bug Detection & Prioritization: Analyze negative review text to identify recurring technical issues, crashes, or bugs, allowing developers to prioritize fixes based on user impact.
      • Feature Requests & Roadmap Prioritization: Extract feature suggestions from positive and neutral review text to inform future product roadmap decisions and develop features users actively desire.
      • User Experience (UX) Enhancement: Understand pain points related to app design, navigation, and overall usability by analyzing common complaints in the review field.
      • Version Impact Analysis: If integrated with app version data, track changes in rating and sentiment after new app updates to assess the effectiveness of bug fixes or new features.
    • Market Research & Competitive Intelligence:

      • Competitor Benchmarking: Analyze reviews of competitor apps (if included or combined with similar datasets) to identify their strengths, weaknesses, and user expectations within a specific app category.
      • Market Gap Identification: Discover unmet user needs or features that users desire but are not adequately provided by existing apps.
      • Niche Opportunities: Identify specific use cases or user segments that are underserved based on recurring feedback.
    • Marketing & App Store Optimization (ASO):

      • Sentiment Analysis: Perform sentiment analysis on the review and title fields to gauge overall user satisfaction, pinpoint specific positive and negative aspects, and track sentiment shifts over time.
      • Keyword Optimization: Identify frequently used keywords and phrases in reviews to optimize app store listings, improving discoverability and search ranking.
      • Messaging Refinement: Understand how users describe and use the app in their own words, which can inform marketing copy and advertising campaigns.
      • Reputation Management: Monitor rating trends and identify critical reviews quickly to facilitate timely responses and proactive customer engagement.
    • Academic & Data Science Research:

      • Natural Language Processing (NLP): The review and title fields are excellent for training and testing NLP models for sentiment analysis, topic modeling, named entity recognition, and text summarization.
      • User Behavior Analysis: Study patterns in rating distribution, isEdited status, and date to understand user engagement and feedback cycles.
      • Cross-Country Comparisons: Analyze country-specific reviews to understand regional differences in app perception, feature preferences, or cultural nuances in feedback.

    This App Store Reviews dataset provides a direct, unfiltered conduit to understanding user needs and ultimately driving better app performance and greater user satisfaction. Its structured format and granular detail make it an indispensable asset for data-driven decision-making in the mobile app industry.

  5. Most downloaded Apple apps worldwide 2024

    • statista.com
    • ai-chatbox.pro
    Updated Nov 19, 2024
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    Statista Research Department (2024). Most downloaded Apple apps worldwide 2024 [Dataset]. https://www.statista.com/topics/1729/app-stores/
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    Dataset updated
    Nov 19, 2024
    Dataset provided by
    Statistahttp://statista.com/
    Authors
    Statista Research Department
    Description

    In July 2024, Shazam: Find Music & Concerts was the most popular app published by Apple, generating approximately 4.6 million downloads from iOS and Google Play Store users during the month. Second-ranked Move to iOS was downloaded three million times from global users. Developer-specific app TestFlight, which allows app publishers to test beta versions of their product to publish on the Apple App Store was the third most popular app published by Apple, with 1.66 million downloads

  6. h

    mac-app-store-apps-metadata

    • huggingface.co
    Updated Feb 29, 2024
    + more versions
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    MacPaw Way Ltd. (2024). mac-app-store-apps-metadata [Dataset]. https://huggingface.co/datasets/MacPaw/mac-app-store-apps-metadata
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    Dataset updated
    Feb 29, 2024
    Dataset provided by
    MacPaw
    Authors
    MacPaw Way Ltd.
    License

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

    Description

    Dataset Card for Macappstore Applications Metadata

    Mac App Store Applications Metadata sourced by the public API.

    Curated by: MacPaw Way Ltd.

    Language(s) (NLP): Mostly EN, DE License: MIT

      Dataset Details
    

    This data aims to cover our internal company research needs and start collecting and sharing the macOS app dataset since we have yet to find a suitable existing one. Full application metadata was sourced by the public iTunes search API for the US, Germany, and Ukraine… See the full description on the dataset page: https://huggingface.co/datasets/MacPaw/mac-app-store-apps-metadata.

  7. Free and paid app distribution for Android and iOS 2025

    • statista.com
    Updated May 2, 2025
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    Statista (2025). Free and paid app distribution for Android and iOS 2025 [Dataset]. https://www.statista.com/statistics/263797/number-of-applications-for-mobile-phones/
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    Dataset updated
    May 2, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    May 2025
    Area covered
    Worldwide
    Description

    As of May 2025, nearly 97 percent of apps in the Google Play app store were freely available. The number of free apps on the Google Play Store and the Apple Store alike has been consistently higher than the number of paid apps. By comparison, free Android apps on Amazon Appstore were roughly 81 percent, while paid apps accounted for a share of 19 percent of the total apps available in the store. Mobile apps and consumer spending Mobile apps have become integral to our daily routine, offering convenience and entertainment. In the second quarter of 2024, the total value of the global consumer spending on mobile apps was almost 35 billion U.S. dollars, highlighting the significant role that mobile apps play in the digital economy. As of the third quarter of 2023, consumers spent an average of 5.05 U.S. dollars on mobile apps per smartphone, which underlines the high demand for these digital solutions. App stores commission rates under scrutiny As of August 2023, the standard commission rates on revenues generated from apps hosted on the Apple App Store and the Google Play Store were set at 30 percent. However, between the end of 2020 and mid-2021, both Apple and Google were forced to address the criticism of their app store policies. In 2020, the European Union drafted the Digital Market Act, with the purpose of ensuring a healthy degree of competition in the tech environment. In December 2022, Apple was reported to start planning to allow sideloading and the presence of alternative app stores on its devices. In August 2021, the United States Senate presented the Open Apps Market Act to reduce tech giants‘ control over the digital app market. As regulations are expected to promote competition in the tech and mobile environment, in March 2023, Microsoft was reported to preparing to launch a new mobile gaming store, which will compete with the Apple App Store and the Google Play Store.In 2026, mobile app spending is forecasted to reach 161 billion U.S. dollars and 72 billion U.S. dollars on the Apple App Store and the Google Play Store, respectively. While both Google and Apple started applying some changes in their app store policies in 2021, like lowering commission fees for small publishers generating less than 1 million U.S. dollars in yearly revenues, the two tech giants might face additional restrictions and limitations in all their major markets. In the case of Apple, in 2021, the company updated its App Store policies, allowing developers to offer alternative payment methods. In 2022, Apple updated its review guidelines, requiring developers to share more information about collecting and using data, including disclosing the types of collected data and how it's used.

  8. Revenue split for app stores worldwide 2024

    • statista.com
    • ai-chatbox.pro
    Updated Oct 8, 2024
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    Statista (2024). Revenue split for app stores worldwide 2024 [Dataset]. https://www.statista.com/statistics/975776/revenue-split-leading-digital-content-store-worldwide/
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    Dataset updated
    Oct 8, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    Worldwide
    Description

    Apple takes a standard 30 percent commission rate for App Store transactions and regular subscriptions. Additionally, app developers that host their apps on the Apple App Store and manage to retain subscription users see their commission fees drop to 15 percent after the subscriber's first year. After incurring penalties and fines from the Netherlands Authority for Consumers and Markets (ACM), Apple further agreed to decrease commission fees for dating apps hosted in the Dutch Apple App Store. In August 2024, Apple changed its app store policy for the European Union, after receiving a penalty for breaking the EU Digital Markets Act (DMA). App publishers in the EU will be subjected to a standard 17 percent commission fee on in-app purchases made via iOS and iPadOS. Additionally, Apple applies a "Core Technology Fee" of 0.50 Euros for each new app installation after the first million installs.

    App publishers and developers In 2021, the leading app distribution platforms – the Apple App Store, the Google Play Store, and the Amazon AppStore- introduced tailored programs to accommodate smaller developers and reduce their due commissions. These program also interested subscription apps, which can now enjoy a 15 percent commission fee on the Google Play Store, and of 15 percent in the Apple App Store after the first 12 months. iOS subscription apps had a conversion rate of approximately 4.55 percent in April 2023, while gaming apps had a commission rate of around two percent in the same month. App stores vs. publishers: revenues During the second quarter of 2024, the Apple App Store was reported to generate 24.6 billion U.S. dollars in revenues from global users, more than double the revenues Android users generated via the Google Play Store. The Apple App Store is expected to generate around 125 billion U.S. dollars in revenues from global consumers worldwide in 2027 while the Google Play Store could reach 60 billion U.S. dollars in revenues from subscriptions and other in-app purchases in the same year. In 2023, seven mobile app publishers and almost 20 mobile gaming app publishers generated one billion U.S. dollars in cumulative revenues.

  9. o

    App Store Charts - Top Free Apps

    • opendatabay.com
    .csv
    Updated Jun 9, 2025
    + more versions
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    Appnalysis (2025). App Store Charts - Top Free Apps [Dataset]. https://www.opendatabay.com/data/premium/b87afb3f-95c7-406d-8777-28bf6b5f8179
    Explore at:
    .csvAvailable download formats
    Dataset updated
    Jun 9, 2025
    Dataset authored and provided by
    Appnalysis
    License

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

    Area covered
    Mobile Applications, Games and Usage
    Description

    A vast collection of data which includes the Top 100 Free Applications in the iOS App Store for each day since February 2024.

    Features:

    • Date of chart
    • Rank
    • App name
    • App identifier
    • Chart collection

    Usage:

    Market trend analysis, business strategy development.

    Coverage:

    This will cover the top free app chart in the UK iOS App store.

    License:

    CCO

    Who can use it:

    Product Owners or Project Managers can use this data set.

    How to use it:

    The data set could be used to track specific applications and their position within the App store chart over time.

  10. App Store Reviews for a Mobile App

    • kaggle.com
    Updated Sep 29, 2024
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    Anil (2024). App Store Reviews for a Mobile App [Dataset]. https://www.kaggle.com/datasets/sanlian/app-store-reviews-for-a-mobile-app/code
    Explore at:
    CroissantCroissant is a format for machine-learning datasets. Learn more about this at mlcommons.org/croissant.
    Dataset updated
    Sep 29, 2024
    Dataset provided by
    Kagglehttp://kaggle.com/
    Authors
    Anil
    License

    http://opendatacommons.org/licenses/dbcl/1.0/http://opendatacommons.org/licenses/dbcl/1.0/

    Description

    This dataset contains fictional reviews from a hypothetical mobile application, generated for demo purposes in various projects. The reviews include detailed feedback from users across different countries and platforms, with additional attributes such as star ratings, like/dislike counts, and issue flags. The data was later used as an input for a large language model (LLM) to generate labeled outputs, which are included in a separate dataset named labeled_app_store_reviews. This labeled dataset can be used for machine learning tasks such as sentiment analysis, text classification, or even A/B testing simulations.

  11. Enterprise App Store Market Analysis North America, Europe, APAC, South...

    • technavio.com
    Updated Oct 1, 2002
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    Technavio (2002). Enterprise App Store Market Analysis North America, Europe, APAC, South America, Middle East and Africa - US, UK, China, India, Germany - Size and Forecast 2024-2028 [Dataset]. https://www.technavio.com/report/enterprise-app-store-market-industry-analysis
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    Dataset updated
    Oct 1, 2002
    Dataset provided by
    TechNavio
    Authors
    Technavio
    Time period covered
    2021 - 2025
    Area covered
    Germany, United Kingdom, India, United States, Global
    Description

    Snapshot img

    Enterprise App Store Market Size 2024-2028

    The enterprise app store market size is forecast to increase by USD 4.59 billion at a CAGR of 18.51% between 2023 and 2028.

    The market is witnessing significant growth due to the increasing need to enhance business efficiency and productivity. The integration of advanced technologies such as artificial intelligence (AI), analytics, and machine learning into enterprise resource planning (ERP) software, hybrid cloud, and other enterprise application software is driving market growth. Additionally, the integration of blockchain technology is expected to provide enhanced security and transparency to enterprise applications. Digital transformation is another key trend In the market, with organizations increasingly adopting mobile apps for various business functions, including logistics, e-commerce, CRM, and ERP. The integration of deep learning and AI in mobile applications is enabling predictive analytics and automation, leading to improved business outcomes.
    

    What will be the Size of the Enterprise App Store Market During the Forecast Period?

    Request Free Sample

    The market continues to experience significant growth as large enterprises and Small and Medium-sized Enterprises (SMEs) increasingly adopt mobile application development for digitization. Internal app marketplaces have emerged as a key trend, enabling organizations to distribute and manage mobile applications internally. Bring Your Own Device (BYOD) policies have further fueled this trend, with asset teams facilitating the deployment of enterprise mobility solutions. Patent activity In the mobile application development space reflects the market's dynamic nature, with businesses seeking to protect their intellectual property. Version control and self-service mobile applications are also gaining traction, allowing for efficient management and customization of business applications.
    Moreover, enterprise mobility solutions encompass both on-premise and cloud deployment models, catering to various organizational needs. The market spans various industries, including IT, retail and e-commerce, health and fitness, and more. Confidential information security and strong security features remain paramount, as enterprise app stores increasingly handle sensitive business data. While gaming, music and entertainment, and social networking apps may be popular consumer categories, the market primarily focuses on business applications. Android is a dominant platform, though other operating systems also find use in specific enterprise contexts. Overall, the market shows no signs of slowing down, as businesses continue to leverage mobile technology for increased productivity and efficiency.
    

    How is this Enterprise App Store Industry segmented and which is the largest segment?

    The enterprise app store industry research report provides comprehensive data (region-wise segment analysis), with forecasts and estimates in 'USD billion' for the period 2024-2028, as well as historical data from 2018-2022 for the following segments.

    Deployment
    
      Cloud
      On-premise
    
    
    Type
    
      Large enterprise
      SME
    
    
    Geography
    
      North America
    
        US
    
    
      Europe
    
        Germany
        UK
    
    
      APAC
    
        China
        India
    
    
      South America
    
    
    
      Middle East and Africa
    

    By Deployment Insights

    The cloud segment is estimated to witness significant growth during the forecast period.
    

    The enterprise app market encompasses cloud-based and on-premises app stores, catering to the needs of large enterprises and SMEs across industries, including IT, BFSI, and retail. Cloud-based enterprise app stores dominate the market due to their ability to offer centralized control, automation, and optimization of business processes for global organizations. This trend is particularly prominent in developing countries with increasing SME presence, such as India and China. Mobile application development in areas like Android and iOS mobility solutions, version control, and customizability is a significant driver for enterprise mobility solutions. Security features, including multi-factor authentication, encryption, and tamper-proofing, are essential considerations for these platforms, ensuring confidential information remains secure during remote work.

    Get a glance at the Enterprise App Store Industry report of share of various segments Request Free Sample

    The cloud segment was valued at USD 1.77 billion in 2018 and showed a gradual increase during the forecast period.

    Regional Analysis

    North America is estimated to contribute 31% to the growth of the global market during the forecast period.
    

    Technavio's analysts have elaborately explained the regional trends and drivers that shape the market during the forecast period.

    For more insights on the market share of various regions, Request Free Sample

    The North American market is currently driven by significant inves

  12. b

    App Revenue Data (2025)

    • businessofapps.com
    Updated Sep 7, 2017
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    Business of Apps (2017). App Revenue Data (2025) [Dataset]. https://www.businessofapps.com/data/app-revenues/
    Explore at:
    Dataset updated
    Sep 7, 2017
    Dataset authored and provided by
    Business of Apps
    License

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

    Description

    App Revenue Key StatisticsMobile Ad SpendApp and Game RevenuesiOS App and Game RevenueGoogle Play App and Game RevenueGaming App RevenuesiOS Gaming App RevenueGoogle Play Gaming App RevenueApp...

  13. Google App Store EDA

    • kaggle.com
    Updated Nov 22, 2024
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    Hassan Mehmood (2024). Google App Store EDA [Dataset]. https://www.kaggle.com/datasets/hassanmehmood413/google-app-store-eda
    Explore at:
    CroissantCroissant is a format for machine-learning datasets. Learn more about this at mlcommons.org/croissant.
    Dataset updated
    Nov 22, 2024
    Dataset provided by
    Kagglehttp://kaggle.com/
    Authors
    Hassan Mehmood
    Description

    About the Dataset

    Context While there are numerous public datasets available, particularly for the Apple App Store (on platforms like Kaggle), there is a noticeable lack of similar datasets for Google Play Store apps. After investigating further, I discovered that the iTunes App Store utilizes a well-organized, index-like structure for easy web scraping. However, Google Play Store relies on more complex modern techniques such as dynamic page loading using JQuery, making it more difficult to scrape the data.

    Content Each entry (representing an app) contains attributes like category, rating, size, and other relevant details.

    Acknowledgements This dataset was sourced from web scraping the Google Play Store. Without this, the app data would not have been accessible.

    Inspiration The data from the Google Play Store offers great potential for driving success in the app development industry. Developers can extract valuable insights to enhance their offerings and effectively tap into the Android market!

  14. Apps in selected categories collecting data types from global iOS users 2023...

    • statista.com
    • ai-chatbox.pro
    Updated Jan 16, 2024
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    Statista (2024). Apps in selected categories collecting data types from global iOS users 2023 [Dataset]. https://www.statista.com/statistics/1440894/ios-apps-in-selected-category-collecting-data/
    Explore at:
    Dataset updated
    Jan 16, 2024
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    May 17, 2023
    Area covered
    Worldwide
    Description

    As of May 2023, product interaction data were the most commonly collected data points, with 94 over the 100 analyzed apps reporting to collect such data. User ID and crash data were collected by by 93 and 92 apps over 100, respectively. Over the 10 leading shopping apps hosted on the Apple App Store, the totality collected precise location, physical address, and payment info.

  15. n

    Data from: App Store (iOS)

    • wikipedia.tr-tr.nina.az
    Updated Jun 17, 2024
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    (2024). App Store (iOS) [Dataset]. https://www.wikipedia.tr-tr.nina.az/App_Store_(iOS).html
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    Dataset updated
    Jun 17, 2024
    License

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

    Description

    Bu madde iOS işletim sistemiyle yüklü gelen App Store içindir Mac App Store ile karıştırılmamalıdır App Storeişletim sis

  16. o

    Data from: A Longitudinal Study of Removed Apps in iOS App Store

    • explore.openaire.eu
    Updated Mar 8, 2021
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    Fuqi Lin; Haoyu Wang; Liu Wang; Xuanzhe Liu (2021). A Longitudinal Study of Removed Apps in iOS App Store [Dataset]. http://doi.org/10.5281/zenodo.4588265
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    Dataset updated
    Mar 8, 2021
    Authors
    Fuqi Lin; Haoyu Wang; Liu Wang; Xuanzhe Liu
    Description

    Dataset for the paper A Longitudinal Study of Removed Apps in iOS App Store (WWW 2021)

  17. M

    App Store Optimization Software Market Report By Product (Data Platforms,...

    • marketresearchstore.com
    pdf
    Updated Jun 21, 2025
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    Market Research Store (2025). App Store Optimization Software Market Report By Product (Data Platforms, Keyword Trackers, Ranking Optimizing, and Others), By Application (lifestyle, Social Media, Utilities, Gaming and Entertainment, News and Information, and Others), and By Region - Global Industry Analysis, Size, Share, Growth, Latest Trends, Regional Outlook, and Forecast 2024 – 2032 [Dataset]. https://www.marketresearchstore.com/market-insights/app-store-optimization-software-market-830468
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    pdfAvailable download formats
    Dataset updated
    Jun 21, 2025
    Dataset authored and provided by
    Market Research Store
    License

    https://www.marketresearchstore.com/privacy-statementhttps://www.marketresearchstore.com/privacy-statement

    Time period covered
    2022 - 2030
    Area covered
    Global
    Description

    Global App Store Optimization Software market size expected from $3.86 Bn in 2023 to $8.66 Bn by 2032, at CAGR 9.40% during forecast period (2024-2032)

  18. Google Play Store Apps / Games Data, Android Apps Data, Consumer Review...

    • datarade.ai
    .json, .csv
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    OpenWeb Ninja, Google Play Store Apps / Games Data, Android Apps Data, Consumer Review Data, Top Charts | Real-Time API [Dataset]. https://datarade.ai/data-products/openweb-ninja-google-play-store-data-android-apps-games-openweb-ninja
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    .json, .csvAvailable download formats
    Dataset authored and provided by
    OpenWeb Ninja
    Area covered
    Guam, Macedonia (the former Yugoslav Republic of), Korea (Republic of), Bermuda, Nicaragua, Netherlands, Azerbaijan, Finland, Mali, Christmas Island
    Description

    Use the OpenWeb Ninja Google Play App Store Data API to access comprehensive data on Google Play Store, including Android Apps / Games, reviews, top charts, search, and more. Our extensive dataset provides over 40 app store data points, enabling you to gain deep insights into the market.

    The App Store Data dataset includes all key app details:

    App Name, Description, Rating, Photos, Downloads, Version Information, App Size, Permissions, Developer and Contact Information, Consumer Review Data.

  19. v

    Global App Store Optimization Software Market Size By Product (Data...

    • verifiedmarketresearch.com
    pdf,excel,csv,ppt
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    Verified Market Research, Global App Store Optimization Software Market Size By Product (Data Platforms, Keyword Trackers), By Application (Lifestyle, Social Media, Utilities), By Geographic Scope And Forecast [Dataset]. https://www.verifiedmarketresearch.com/product/app-store-optimization-software-market/
    Explore at:
    pdf,excel,csv,pptAvailable download formats
    Dataset authored and provided by
    Verified Market Research
    License

    https://www.verifiedmarketresearch.com/privacy-policy/https://www.verifiedmarketresearch.com/privacy-policy/

    Time period covered
    2026 - 2032
    Area covered
    Global
    Description

    App Store Optimization Software Market size was valued at USD 0.53 Billion in 2024 and is projected to reach USD 1.99 Billion by 2032, growing at a CAGR of 18.02% from 2026 to 2032.

    The App Store Optimization (ASO) Software market is driven by the rapidly growing number of mobile applications and the increasing competition among app developers to enhance their visibility and downloads. As businesses increasingly recognize the importance of mobile apps in their digital strategy, the demand for tools that improve app discoverability, user engagement, and conversion rates intensifies. The rise in mobile app usage, coupled with the necessity for better app ranking on app stores like Google Play and Apple App Store, propels the adoption of ASO software. Additionally, the integration of advanced analytics, keyword optimization, and user behavior insights within ASO tools enhances app performance and ROI, further fueling market growth. The continuous updates and algorithm changes in app stores also necessitate the use of specialized software to stay competitive, driving the market forward.

  20. Children apps treatment of personal data 2022, by app store

    • statista.com
    Updated Oct 18, 2022
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    Statista (2022). Children apps treatment of personal data 2022, by app store [Dataset]. https://www.statista.com/statistics/1339383/children-app-personal-data-usage-by-app-store/
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    Dataset updated
    Oct 18, 2022
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    Worldwide
    Description

    As of the first quarter of 2022, it was found that approximately 76 percent of the leading mobile apps for children hosted in the Google Play Store could potentially transmit location data to advertisers, while in the case of the Apple App Store the number of popular children apps corresponded to around 67 percent of the total. Additionally, 75 percent of iOS apps had potential access to personal data through permissions, while in the case of apps hosted in the Google Play Store the number of popular children apps holding the same possibility corresponded to around 35 percent of the total.

Share
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Close
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Business of Apps (2021). App Store Data (2025) [Dataset]. https://www.businessofapps.com/data/app-stores/

App Store Data (2025)

Explore at:
30 scholarly articles cite this dataset (View in Google Scholar)
Dataset updated
Jan 12, 2021
Dataset authored and provided by
Business of Apps
License

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

Description

Apple App Store Key StatisticsApps & Games in the Apple App StoreApps in the Apple App StoreGames in the Apple App StoreMost Popular Apple App Store CategoriesPaid vs Free Apps in Apple App...

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