100+ datasets found
  1. T

    Canada Stock Market Index (TSX) Data

    • tradingeconomics.com
    • de.tradingeconomics.com
    • +13more
    csv, excel, json, xml
    Updated Jun 9, 2025
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    TRADING ECONOMICS (2025). Canada Stock Market Index (TSX) Data [Dataset]. https://tradingeconomics.com/canada/stock-market
    Explore at:
    csv, xml, excel, jsonAvailable download formats
    Dataset updated
    Jun 9, 2025
    Dataset authored and provided by
    TRADING ECONOMICS
    License

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

    Time period covered
    Jun 29, 1979 - Jun 9, 2025
    Area covered
    Canada
    Description

    Canada's main stock market index, the TSX, fell to 26419 points on June 9, 2025, losing 0.04% from the previous session. Over the past month, the index has climbed 3.47% and is up 19.70% compared to the same time last year, according to trading on a contract for difference (CFD) that tracks this benchmark index from Canada. Canada Stock Market Index (TSX) - values, historical data, forecasts and news - updated on June of 2025.

  2. G

    Toronto Stock Exchange statistics

    • open.canada.ca
    • www150.statcan.gc.ca
    • +2more
    csv, html, xml
    Updated Nov 8, 2023
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    Statistics Canada (2023). Toronto Stock Exchange statistics [Dataset]. https://open.canada.ca/data/en/dataset/0e1e57aa-e664-41b5-a69f-d814d4407d62
    Explore at:
    csv, html, xmlAvailable download formats
    Dataset updated
    Nov 8, 2023
    Dataset provided by
    Statistics Canada
    License

    Open Government Licence - Canada 2.0https://open.canada.ca/en/open-government-licence-canada
    License information was derived automatically

    Description

    This table contains 25 series, with data for years 1956 - present (not all combinations necessarily have data for all years). This table contains data described by the following dimensions (Not all combinations are available): Geography (1 items: Canada ...), Toronto Stock Exchange Statistics (25 items: Standard and Poor's/Toronto Stock Exchange Composite Index; high; Standard and Poor's/Toronto Stock Exchange Composite Index; close; Toronto Stock Exchange; oil and gas; closing quotations; Standard and Poor's/Toronto Stock Exchange Composite Index; low ...).

  3. Annual S&P/TSX Composite index performance 2005-2024

    • statista.com
    Updated Feb 28, 2025
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    Statista (2025). Annual S&P/TSX Composite index performance 2005-2024 [Dataset]. https://www.statista.com/statistics/410318/annual-sandp-tsx-composite-index-performance/
    Explore at:
    Dataset updated
    Feb 28, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    Canada
    Description

    The S&P/TSX Composite index (CAD) closed at 24,727.94 points at the end of 2024. This was an increase over the past year. What is the S&P/TSX Composite index? The S&P/TSX Composite index is a Canadian index that measures stocks on the Toronto Stock Exchange, one of the largest stock exchanges worldwide. A stock market index tracks the development of a group of stock prices. It allows to get a quick idea of economic climate in a given region. Canadian stock market The size of a stock exchange is basically the sum of market capitalizations of companies being traded on this stock exchange. The largest companies in terms of market capitalization in Canada in 2024 were the Royal Bank of Canada, and Toronto Dominion Bank. The total market capitalization of listed domestic companies in Canada equaled to 2.74 trillion U.S. dollars in 2022.

  4. T

    Canada Stock Market Index (TSX) - Index Price | Live Quote | Historical...

    • tradingeconomics.com
    csv, excel, json, xml
    Updated May 8, 2018
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    TRADING ECONOMICS (2018). Canada Stock Market Index (TSX) - Index Price | Live Quote | Historical Chart [Dataset]. https://tradingeconomics.com/sptsx:ind
    Explore at:
    xml, csv, excel, jsonAvailable download formats
    Dataset updated
    May 8, 2018
    Dataset authored and provided by
    TRADING ECONOMICS
    License

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

    Time period covered
    Jan 1, 2000 - Jun 9, 2025
    Area covered
    Canada
    Description

    Prices for Canada Stock Market Index (TSX) including live quotes, historical charts and news. Canada Stock Market Index (TSX) was last updated by Trading Economics this June 9 of 2025.

  5. Canada Equity Market Index

    • ceicdata.com
    Updated Jun 15, 2020
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    CEICdata.com (2020). Canada Equity Market Index [Dataset]. https://www.ceicdata.com/en/indicator/canada/equity-market-index
    Explore at:
    Dataset updated
    Jun 15, 2020
    Dataset provided by
    CEIC Data
    License

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

    Time period covered
    Mar 1, 2024 - Feb 1, 2025
    Area covered
    Canada
    Variables measured
    Securities Exchange Index
    Description

    Key information about Canada S&P/TSX Composite

    • Canada S&P/TSX Composite closed at 25,393.5 points in Feb 2025, compared with 25,533.1 points at the previous month end
    • Canada Equity Market Index: Month End: TMX: S&P/TSX Composite data is updated monthly, available from May 2002 to Feb 2025, with an average number of 13,818.0 points
    • The data reached an all-time high of 25,648.0 points in Nov 2024 and a record low of 6,180.4 points in Sep 2002

    Toronto Stock Exchange provides daily data on several major stock market indices, but the S&P/TSX Composite index is the one most closely monitored by analysts

  6. T

    Canada TSX 60 Stock Market Index - Index Price | Live Quote | Historical...

    • tradingeconomics.com
    csv, excel, json, xml
    Updated Mar 22, 2024
    + more versions
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    TRADING ECONOMICS (2024). Canada TSX 60 Stock Market Index - Index Price | Live Quote | Historical Chart [Dataset]. https://tradingeconomics.com/sptsx60:ind
    Explore at:
    csv, json, xml, excelAvailable download formats
    Dataset updated
    Mar 22, 2024
    Dataset authored and provided by
    TRADING ECONOMICS
    License

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

    Time period covered
    Jan 1, 2000 - Jun 9, 2025
    Area covered
    Canada
    Description

    Prices for Canada TSX 60 Stock Market Index including live quotes, historical charts and news. Canada TSX 60 Stock Market Index was last updated by Trading Economics this June 9 of 2025.

  7. k

    Where Will CAE:TSX Stock Be in 6 Month? (Forecast)

    • kappasignal.com
    Updated Sep 23, 2023
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    KappaSignal (2023). Where Will CAE:TSX Stock Be in 6 Month? (Forecast) [Dataset]. https://www.kappasignal.com/2023/09/where-will-caetsx-stock-be-in-6-month.html
    Explore at:
    Dataset updated
    Sep 23, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    Where Will CAE:TSX Stock Be in 6 Month?

    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

  8. k

    CM:TSX Stock Forecast: A Buy For The Next 6 Month (Forecast)

    • kappasignal.com
    Updated Sep 15, 2023
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    KappaSignal (2023). CM:TSX Stock Forecast: A Buy For The Next 6 Month (Forecast) [Dataset]. https://www.kappasignal.com/2023/09/cmtsx-stock-forecast-buy-for-next-6.html
    Explore at:
    Dataset updated
    Sep 15, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    CM:TSX Stock Forecast: A Buy For The Next 6 Month

    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

  9. Toronto Stock Exchange Market Data

    • lseg.com
    Updated Nov 25, 2024
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    LSEG (2024). Toronto Stock Exchange Market Data [Dataset]. https://www.lseg.com/en/data-analytics/financial-data/pricing-and-market-data/equities-market-data/toronto-stock-exchange-market-data
    Explore at:
    csv,delimited,gzip,html,json,pcap,pdf,parquet,python,sql,string format,text,user interface,xml,zip archiveAvailable download formats
    Dataset updated
    Nov 25, 2024
    Dataset provided by
    London Stock Exchange Grouphttp://www.londonstockexchangegroup.com/
    Authors
    LSEG
    License

    https://www.lseg.com/en/policies/website-disclaimerhttps://www.lseg.com/en/policies/website-disclaimer

    Description

    Explore LSEG's Toronto Stock Exchange (TSX) Market Data, representing a broad range of businesses from Canada and abroad.

  10. k

    AII:TSX Stock: Set a stop-loss order (Forecast)

    • kappasignal.com
    Updated Aug 13, 2023
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    KappaSignal (2023). AII:TSX Stock: Set a stop-loss order (Forecast) [Dataset]. https://www.kappasignal.com/2023/08/aiitsx-stock-set-stop-loss-order.html
    Explore at:
    Dataset updated
    Aug 13, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    AII:TSX Stock: Set a stop-loss order

    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

  11. Canada TSX: Volume

    • ceicdata.com
    Updated May 14, 2021
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    CEICdata.com (2021). Canada TSX: Volume [Dataset]. https://www.ceicdata.com/en/canada/toronto-stock-exchange-turnover/tsx-volume
    Explore at:
    Dataset updated
    May 14, 2021
    Dataset provided by
    CEIC Data
    License

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

    Time period covered
    Mar 1, 2018 - Feb 1, 2019
    Area covered
    Canada
    Description

    Canada TSX: Volume data was reported at 7,139.548 Unit mn in Feb 2019. This records a decrease from the previous number of 7,990.357 Unit mn for Jan 2019. Canada TSX: Volume data is updated monthly, averaging 7,020.077 Unit mn from May 2002 (Median) to Feb 2019, with 202 observations. The data reached an all-time high of 12,193.068 Unit mn in Oct 2008 and a record low of 2,971.922 Unit mn in Aug 2002. Canada TSX: Volume data remains active status in CEIC and is reported by Toronto Stock Exchange. The data is categorized under Global Database’s Canada – Table CA.Z002: Toronto Stock Exchange: Turnover.

  12. k

    Where Will OR:TSX Stock Be in 1 Year? (Forecast)

    • kappasignal.com
    Updated Aug 1, 2023
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    KappaSignal (2023). Where Will OR:TSX Stock Be in 1 Year? (Forecast) [Dataset]. https://www.kappasignal.com/2023/08/where-will-ortsx-stock-be-in-1-year.html
    Explore at:
    Dataset updated
    Aug 1, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    Where Will OR:TSX Stock Be in 1 Year?

    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

  13. k

    Will the TSX Index Soar or Stall? (Forecast)

    • kappasignal.com
    Updated Oct 2, 2024
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    KappaSignal (2024). Will the TSX Index Soar or Stall? (Forecast) [Dataset]. https://www.kappasignal.com/2024/10/will-tsx-index-soar-or-stall.html
    Explore at:
    Dataset updated
    Oct 2, 2024
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    Will the TSX Index Soar or Stall?

    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

  14. d

    Canadian Financial Markets Research Centre (CFMRC) Summary Information...

    • search.dataone.org
    Updated Dec 28, 2023
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    Canadian Financial Markets Research Centre (2023). Canadian Financial Markets Research Centre (CFMRC) Summary Information Database [TSX] [On-line Subscription] [Dataset]. http://doi.org/10.5683/SP3/KR28QU
    Explore at:
    Dataset updated
    Dec 28, 2023
    Dataset provided by
    Borealis
    Authors
    Canadian Financial Markets Research Centre
    Time period covered
    Jan 1, 1993 - Jan 1, 2014
    Area covered
    Canada
    Description

    Canadian Financial Markets Research Centre (CFMRC) summary information database (or CFMRC TSX database for short) includes daily and monthly Toronto Stock Exchange trading information about specific securities as well as information on "price adjustments" such as dividends, stock splits, recapitalizations, etc. The database also includes daily and monthly indexes containing information on daily and monthly index levels as well as selected other financial markets information. CFMRC/TSX highlights: expanded daily data set includes opening as well as closing data for: prices; bids; asks; trades; and volumes, amongst other information expanded monthly data set includes: betas; earnings per share; volume; and transactions, amongst other data expanded daily and monthly index data sets which include: a selection of interest and exchange rates; TMX Group indices; new under- and over- $2.00 indices, as well as other data CHASS is maintaining two web interfaces: CFMRC/TSX annual update - updated once a year, usually at the beginning of the calendar year. CFMRC/TSX quarterly update - updated four times a year.

  15. C

    Canada TSX: Market Capitalization: Closed‐End Funds

    • ceicdata.com
    Updated Feb 15, 2025
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    CEICdata.com (2025). Canada TSX: Market Capitalization: Closed‐End Funds [Dataset]. https://www.ceicdata.com/en/canada/tmx-group-limited-market-capitalization/tsx-market-capitalization-closedend-funds
    Explore at:
    Dataset updated
    Feb 15, 2025
    Dataset provided by
    CEICdata.com
    License

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

    Time period covered
    Feb 1, 2024 - Jan 1, 2025
    Area covered
    Canada
    Variables measured
    Stock
    Description

    Canada TSX: Market Capitalization: Closed‐End Funds data was reported at 48,731.696 CAD mn in Mar 2025. This records an increase from the previous number of 47,184.989 CAD mn for Feb 2025. Canada TSX: Market Capitalization: Closed‐End Funds data is updated monthly, averaging 25,880.500 CAD mn from Dec 2012 (Median) to Mar 2025, with 148 observations. The data reached an all-time high of 48,731.696 CAD mn in Mar 2025 and a record low of 16,506.382 CAD mn in Dec 2018. Canada TSX: Market Capitalization: Closed‐End Funds data remains active status in CEIC and is reported by TMX Group Limited. The data is categorized under Global Database’s Canada – Table CA.Z002: TMX Group Limited: Market Capitalization. [COVID-19-IMPACT]

  16. k

    SLF:TSX Stock: The Stock Market Bubble Is About to Burst (Forecast)

    • kappasignal.com
    Updated Sep 26, 2023
    + more versions
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    KappaSignal (2023). SLF:TSX Stock: The Stock Market Bubble Is About to Burst (Forecast) [Dataset]. https://www.kappasignal.com/2023/09/slftsx-stock-stock-market-bubble-is.html
    Explore at:
    Dataset updated
    Sep 26, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    SLF:TSX Stock: The Stock Market Bubble Is About to Burst

    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

  17. k

    COG:TSX Stock: The Next Bubble? (Forecast)

    • kappasignal.com
    Updated Jun 19, 2023
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    KappaSignal (2023). COG:TSX Stock: The Next Bubble? (Forecast) [Dataset]. https://www.kappasignal.com/2023/06/cogtsx-stock-next-bubble.html
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    Dataset updated
    Jun 19, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    COG:TSX Stock: The Next Bubble?

    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

  18. k

    AOI:TSX Stock: The Can That's Slowly Rotting Away (Forecast)

    • kappasignal.com
    Updated Oct 21, 2023
    + more versions
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    KappaSignal (2023). AOI:TSX Stock: The Can That's Slowly Rotting Away (Forecast) [Dataset]. https://www.kappasignal.com/2023/10/aoitsx-stock-can-thats-slowly-rotting.html
    Explore at:
    Dataset updated
    Oct 21, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    AOI:TSX Stock: The Can That's Slowly Rotting Away

    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

  19. k

    PTM:TSX Stock: Set to Take Off (Forecast)

    • kappasignal.com
    Updated Jun 21, 2023
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    KappaSignal (2023). PTM:TSX Stock: Set to Take Off (Forecast) [Dataset]. https://www.kappasignal.com/2023/06/ptmtsx-stock-set-to-take-off.html
    Explore at:
    Dataset updated
    Jun 21, 2023
    Dataset authored and provided by
    KappaSignal
    License

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

    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.

    PTM:TSX Stock: Set to Take Off

    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

  20. Canada TSX: Equity Capital Raised: Closed‐End Funds

    • ceicdata.com
    Updated Feb 3, 2021
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    CEICdata.com (2021). Canada TSX: Equity Capital Raised: Closed‐End Funds [Dataset]. https://www.ceicdata.com/en/canada/tmx-group-limited-equity-capital-raised-year-to-date/tsx-equity-capital-raised-closedend-funds
    Explore at:
    Dataset updated
    Feb 3, 2021
    Dataset provided by
    CEIC Data
    License

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

    Time period covered
    Feb 1, 2024 - Jan 1, 2025
    Area covered
    Canada
    Variables measured
    Stock
    Description

    Canada TSX: Equity Capital Raised: Closed‐End Funds data was reported at 200.000 CAD mn in Mar 2025. This records an increase from the previous number of 0.000 CAD mn for Feb 2025. Canada TSX: Equity Capital Raised: Closed‐End Funds data is updated monthly, averaging 549.500 CAD mn from Dec 2012 (Median) to Mar 2025, with 148 observations. The data reached an all-time high of 4,892.000 CAD mn in Dec 2012 and a record low of 0.000 CAD mn in Feb 2025. Canada TSX: Equity Capital Raised: Closed‐End Funds data remains active status in CEIC and is reported by TMX Group Limited. The data is categorized under Global Database’s Canada – Table CA.Z005: TMX Group Limited: Equity Capital Raised: Year to Date. [COVID-19-IMPACT]

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TRADING ECONOMICS (2025). Canada Stock Market Index (TSX) Data [Dataset]. https://tradingeconomics.com/canada/stock-market

Canada Stock Market Index (TSX) Data

Canada Stock Market Index (TSX) - Historical Dataset (1979-06-29/2025-06-09)

Explore at:
2 scholarly articles cite this dataset (View in Google Scholar)
csv, xml, excel, jsonAvailable download formats
Dataset updated
Jun 9, 2025
Dataset authored and provided by
TRADING ECONOMICS
License

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

Time period covered
Jun 29, 1979 - Jun 9, 2025
Area covered
Canada
Description

Canada's main stock market index, the TSX, fell to 26419 points on June 9, 2025, losing 0.04% from the previous session. Over the past month, the index has climbed 3.47% and is up 19.70% compared to the same time last year, according to trading on a contract for difference (CFD) that tracks this benchmark index from Canada. Canada Stock Market Index (TSX) - values, historical data, forecasts and news - updated on June of 2025.

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