8 datasets found
  1. Countries with largest stock markets globally 2025

    • statista.com
    Updated Jun 18, 2025
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    Statista (2025). Countries with largest stock markets globally 2025 [Dataset]. https://www.statista.com/statistics/710680/global-stock-markets-by-country/
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    Dataset updated
    Jun 18, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2025
    Area covered
    Worldwide
    Description

    In 2025, stock markets in the United States accounted for roughly ** percent of world stocks. The next largest country by stock market share was China, followed by the European Union as a whole. The New York Stock Exchange (NYSE) and the NASDAQ are the largest stock exchange operators worldwide. What is a stock exchange? The first modern publicly traded company was the Dutch East Industry Company, which sold shares to the general public to fund expeditions to Asia. Since then, groups of companies have formed exchanges in which brokers and dealers can come together and make transactions in one space. Stock market indices group companies trading on a given exchange, giving an idea of how they evolve in real time. Appeal of stock ownership Over half of adults in the United States are investing money in the stock market. Stocks are an attractive investment because the possible return is higher than offered by other financial instruments.

  2. Is USA Equal Weighting the Secret ETF Outperformer? (Forecast)

    • kappasignal.com
    Updated Mar 24, 2024
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    KappaSignal (2024). Is USA Equal Weighting the Secret ETF Outperformer? (Forecast) [Dataset]. https://www.kappasignal.com/2024/03/is-usa-equal-weighting-secret-etf.html
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    Dataset updated
    Mar 24, 2024
    Dataset authored and provided by
    KappaSignal
    License

    https://www.kappasignal.com/p/legal-disclaimer.htmlhttps://www.kappasignal.com/p/legal-disclaimer.html

    Area covered
    United States
    Description

    This analysis presents a rigorous exploration of financial data, incorporating a diverse range of statistical features. By providing a robust foundation, it facilitates advanced research and innovative modeling techniques within the field of finance.

    Is USA Equal Weighting the Secret ETF Outperformer?

    Financial data:

    • Historical daily stock prices (open, high, low, close, volume)

    • Fundamental data (e.g., market capitalization, price to earnings P/E ratio, dividend yield, earnings per share EPS, price to earnings growth, debt-to-equity ratio, price-to-book ratio, current ratio, free cash flow, projected earnings growth, return on equity, dividend payout ratio, price to sales ratio, credit rating)

    • Technical indicators (e.g., moving averages, RSI, MACD, average directional index, aroon oscillator, stochastic oscillator, on-balance volume, accumulation/distribution A/D line, parabolic SAR indicator, bollinger bands indicators, fibonacci, williams percent range, commodity channel index)

    Machine learning features:

    • Feature engineering based on financial data and technical indicators

    • Sentiment analysis data from social media and news articles

    • Macroeconomic data (e.g., GDP, unemployment rate, interest rates, consumer spending, building permits, consumer confidence, inflation, producer price index, money supply, home sales, retail sales, bond yields)

    Potential Applications:

    • Stock price prediction

    • Portfolio optimization

    • Algorithmic trading

    • Market sentiment analysis

    • Risk management

    Use Cases:

    • Researchers investigating the effectiveness of machine learning in stock market prediction

    • Analysts developing quantitative trading Buy/Sell strategies

    • Individuals interested in building their own stock market prediction models

    • Students learning about machine learning and financial applications

    Additional Notes:

    • The dataset may include different levels of granularity (e.g., daily, hourly)

    • Data cleaning and preprocessing are essential before model training

    • Regular updates are recommended to maintain the accuracy and relevance of the data

  3. d

    Indices Data | Stock & Bonds Indices | Benchmark | Constituents

    • datarade.ai
    .xml, .csv, .txt
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    Exchange Data International, Indices Data | Stock & Bonds Indices | Benchmark | Constituents [Dataset]. https://datarade.ai/data-products/edi-index-benchmark-constituents-components-for-over-300-exchange-data-international
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    .xml, .csv, .txtAvailable download formats
    Dataset authored and provided by
    Exchange Data International
    Area covered
    Iceland, Bulgaria, Sweden, Croatia, Russian Federation, Egypt, Canada, Venezuela (Bolivarian Republic of), Korea (Republic of), Slovenia
    Description

    EDI tracks and collects index notifications from a wide range of index providers and covers many financial market indices, including stock and bond indices as well as economic indicators. Components for over 6000 Indices worldwide

    Indices Data. The components are updated daily. Historical components lists are available based on legal advice. Index components weighting are not offered.

    Using the EDI SFTP Server, you will receive the daily index composition of the indices that you subscribe to. The files are provided as txt.csv or xls format. EDI provides a free coverage check and samples of the index components that are of interest to you.

  4. d

    Russell US Indexes

    • search.dataone.org
    Updated Nov 22, 2023
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    FTSE Russell (2023). Russell US Indexes [Dataset]. http://doi.org/10.7910/DVN/4KTFOQ
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    Dataset updated
    Nov 22, 2023
    Dataset provided by
    Harvard Dataverse
    Authors
    FTSE Russell
    Time period covered
    Dec 31, 1978 - Mar 29, 2018
    Description

    Historical data on Russell US indexes. Data Files Cover: Sector Weights - Individual index files with complete history in each. Sector Weights - Monthly files with all indexes in each. Index Holdings Closed Positions -Periodic (M/Q) files with all indexes in each. Includes Daily Index Holdings for each closing day. Monthly Contribution to Return, an analysis of each sector and industry contributing to the overall return of the Russell Index.

  5. Main companies on the IBEX 35 by their relative weight in Spain 2021

    • statista.com
    Updated Jul 11, 2025
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    Statista (2025). Main companies on the IBEX 35 by their relative weight in Spain 2021 [Dataset]. https://www.statista.com/statistics/1232456/main-companies-ibex-35-by-weighting/
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    Dataset updated
    Jul 11, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2021
    Area covered
    Spain
    Description

    As of 2021, in Spain, just three companies made up for approximately ** percent of the IBEX 35's stock value. Iberdrola ranked as the IBEX 35 company with the highest market share. The stocks of the Spanish energy company based in Bilbao accounted for about ** percent of the stock market index. Santander and Inditex ranked second and third, respectively.

  6. d

    indian stock indexes

    • deepfo.com
    csv, excel, html, xml
    Updated May 17, 2018
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    Deepfo.com by Polyolbion SL, Barcelona, Spain (2018). indian stock indexes [Dataset]. https://deepfo.com/en/most/indian-stock-indexes
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    html, xml, csv, excelAvailable download formats
    Dataset updated
    May 17, 2018
    Dataset authored and provided by
    Deepfo.com by Polyolbion SL, Barcelona, Spain
    License

    https://deepfo.com/documentacion.php?idioma=enhttps://deepfo.com/documentacion.php?idioma=en

    Area covered
    India
    Description

    indian stock indexes. name, image, weighting method, type, date Foundation, Country, continent, Stock Market, Market capitalization, Website, legal entity

  7. f

    p-values for the second hypothesis test.

    • plos.figshare.com
    xls
    Updated Jun 2, 2023
    + more versions
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    Shazia Usmani; Jawwad A. Shamsi (2023). p-values for the second hypothesis test. [Dataset]. http://doi.org/10.1371/journal.pone.0282234.t007
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    xlsAvailable download formats
    Dataset updated
    Jun 2, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Shazia Usmani; Jawwad A. Shamsi
    License

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

    Description

    A significant correlation between financial news with stock market trends has been explored extensively. However, very little research has been conducted for stock prediction models that utilize news categories, weighted according to their relevance with the target stock. In this paper, we show that prediction accuracy can be enhanced by incorporating weighted news categories simultaneously into the prediction model. We suggest utilizing news categories associated with the structural hierarchy of the stock market: that is, news categories for the market, sector, and stock-related news. In this context, Long Short-Term Memory (LSTM) based Weighted and Categorized News Stock prediction model (WCN-LSTM) is proposed. The model incorporates news categories with their learned weights simultaneously. To enhance the effectiveness, sophisticated features are integrated into WCN-LSTM. These include, hybrid input, lexicon-based sentiment analysis, and deep learning to impose sequential learning. Experiments have been performed for the case of the Pakistan Stock Exchange (PSX) using different sentiment dictionaries and time steps. Accuracy and F1-score are used to evaluate the prediction model. We have analyzed the WCN-LSTM results thoroughly and identified that WCN-LSTM performs better than the baseline model. Moreover, the sentiment lexicon HIV4 along with time steps 3 and 7, optimized the prediction accuracy. We have conducted statistical analysis to quantitatively assess our findings. A qualitative comparison of WCN-LSTM with existing prediction models is also presented to highlight its superiority and novelty over its counterparts.

  8. f

    Technical indicators selected for stock trend prediction (Adopted from [8])....

    • figshare.com
    xls
    Updated Jun 2, 2023
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    Shazia Usmani; Jawwad A. Shamsi (2023). Technical indicators selected for stock trend prediction (Adopted from [8]). [Dataset]. http://doi.org/10.1371/journal.pone.0282234.t003
    Explore at:
    xlsAvailable download formats
    Dataset updated
    Jun 2, 2023
    Dataset provided by
    PLOS ONE
    Authors
    Shazia Usmani; Jawwad A. Shamsi
    License

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

    Description

    Technical indicators selected for stock trend prediction (Adopted from [8]).

  9. Not seeing a result you expected?
    Learn how you can add new datasets to our index.

Share
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Email
Click to copy link
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Statista (2025). Countries with largest stock markets globally 2025 [Dataset]. https://www.statista.com/statistics/710680/global-stock-markets-by-country/
Organization logo

Countries with largest stock markets globally 2025

Explore at:
46 scholarly articles cite this dataset (View in Google Scholar)
Dataset updated
Jun 18, 2025
Dataset authored and provided by
Statistahttp://statista.com/
Time period covered
2025
Area covered
Worldwide
Description

In 2025, stock markets in the United States accounted for roughly ** percent of world stocks. The next largest country by stock market share was China, followed by the European Union as a whole. The New York Stock Exchange (NYSE) and the NASDAQ are the largest stock exchange operators worldwide. What is a stock exchange? The first modern publicly traded company was the Dutch East Industry Company, which sold shares to the general public to fund expeditions to Asia. Since then, groups of companies have formed exchanges in which brokers and dealers can come together and make transactions in one space. Stock market indices group companies trading on a given exchange, giving an idea of how they evolve in real time. Appeal of stock ownership Over half of adults in the United States are investing money in the stock market. Stocks are an attractive investment because the possible return is higher than offered by other financial instruments.

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