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Japan's main stock market index, the JP225, rose to 40065 points on July 17, 2025, gaining 1.01% from the previous session. Over the past month, the index has climbed 3.03%, though it remains 0.15% lower than a year ago, according to trading on a contract for difference (CFD) that tracks this benchmark index from Japan. Japan Stock Market Index (JP225) - values, historical data, forecasts and news - updated on July of 2025.
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Japan's main stock market index, the JP225, fell to 39775 points on July 18, 2025, losing 0.32% from the previous session. Over the past month, the index has climbed 3.34%, though it remains 0.72% lower than a year ago, according to trading on a contract for difference (CFD) that tracks this benchmark index from Japan. Japan Stock Market Index (JP225) - values, historical data, forecasts and news - updated on July of 2025.
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Prices for Japan Stock Market Index (JPVIX) including live quotes, historical charts and news. Japan Stock Market Index (JPVIX) was last updated by Trading Economics this July 17 of 2025.
The Nikkei Stock Average (Nikkei 225) closed at ********* points in June 2025. In February 2024, the index surpassed an all-time high recorded in 1989. The Nikkei 225 is a price-weighted stock market index that has been calculated by the Nihon Keizai Shimbun (Nikkei) newspaper since 1950. It comprises 225 constituents listed on the Prime Market of the Tokyo Stock Exchange (TSE).
In 2024, the Nikkei 225 index closed at ********* points. The index surpassed a 34-year-old record in February and reached a new all-time high in July 2024. The Nikkei 225 is a price-weighted stock market index that has been calculated by the Nihon Keizai Shimbun (Nikkei) newspaper since 1950. It comprises 225 constituents listed on the Prime Market of the Tokyo Stock Exchange.
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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.
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)
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)
Stock price prediction
Portfolio optimization
Algorithmic trading
Market sentiment analysis
Risk management
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
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
Annual securities report, Large shareholding report, Registration Statement, Extraordinary report, Share repurchase report, Amendment-Report of Possession of Large Volume, Equity finance, TOB・M&A, Share buyback, Notice of general meeting of shareholders, Dividend forecast, Quarterly earnings report, Revised earnings forecast are available.
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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.
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)
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)
Stock price prediction
Portfolio optimization
Algorithmic trading
Market sentiment analysis
Risk management
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
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
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Shares of Bain-backed Kioxia surged 3% in its stock market debut, valued at $5.25 billion. Learn about Japan's strong memory chip market position.
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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.
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)
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)
Stock price prediction
Portfolio optimization
Algorithmic trading
Market sentiment analysis
Risk management
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
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
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The article discusses the growing demand for toilet tissue, facial tissue, towels, and similar paper products in Japan. Market performance is expected to continue on an upward trend over the next decade, with a projected increase in market volume to 3.1M tons and market value to $8.9B by the end of 2035.
Netflix was the leading subscription video-on-demand (SVOD) service in Japan in 2024. The service held a market share of **** percent during that year. The estimated value of the domestic SVOD market amounted to ***** billion Japanese yen in 2024, up from ***** billion yen in the previous year. According to the estimate, which was based on user fees paid to service operators and excluded advertising revenues, Netflix's market share slightly decreased compared to the previous year. Netflix in JapanNetflix entered the Japanese video-on-demand (VOD) market in September 2015, making it the first Asian market the company ventured into. According to news reports, Netflix expected Japan to be one of the slowest markets to penetrate due to the brand sensitivity of Japanese audiences. At the same time, this brand sensitivity was seen as a key to long-term payoffs once the service was embraced by Japanese consumers. In order to achieve this, the company secured long-term partnership deals with Japanese content creators throughout the years. Notably among them were several high-profile anime studios, whose products were also seen as a way to counter Disney. Other shows featuring domestic content include "The Naked Director," "Terrace House," and "Tidying Up with Marie Kondo." A lack of local content is considered to be one of the factors that hampered Hulu's initial uptake when it started its operations in Japan back in 2011. The Japanese video streaming marketVideo streaming has become an increasingly contested business in Japan as the market has shown strong growth figures in recent years. One major reason for this development can be found in the entry of several foreign services into the Japanese market, with Netflix and Amazon Prime Video both launching in 2015, DAZN following in 2016, and Disney joining the competition in early 2019. The share of people who use SVOD services has multiplied since the mid-2010s and the average time people spend on VOD consumption per weekday has also increased significantly since then.
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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.
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)
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)
Stock price prediction
Portfolio optimization
Algorithmic trading
Market sentiment analysis
Risk management
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
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
According to a report published by GEM Partners in February 2024, Netflix was the leading subscription video-on-demand (SVOD) service in Japan in 2023. The service held a market share of 21.7 percent during that year. The estimated value of the domestic SVOD market amounted to 505.4 billion Japanese yen in 2023, up from 450.8 billion yen in 2022. According to the estimate, which was based on user fees paid to service operators and excluded advertising revenues, Netflix's market share slightly decreased compared to the previous year.
Netflix in Japan
Netflix entered the Japanese streaming market in September 2015, making it the first Asian market the company ventured into. According to news reports, Netflix expected Japan to be one of the slowest markets to penetrate due to the brand sensitivity of Japanese audiences. At the same time, this brand sensitivity was seen as a key to long-term payoffs once the service was embraced by Japanese consumers. In order to achieve this, the company secured long-term partnership deals with Japanese content creators throughout the years. Notably among them were several high-profile anime studios, whose products were also seen as a way to counter Disney. Other shows featuring domestic content include "The Naked Director," "Terrace House," and "Tidying Up with Marie Kondo." A lack of local content is considered to be one of the factors that hampered Hulu's initial uptake when it started its operations in Japan back in 2011.
The Japanese video streaming market
Video streaming has become an increasingly contested business in Japan as the market has shown strong growth figures in recent years. One major reason for this development can be found in the entry of several foreign services into the Japanese market, with Netflix and Amazon Prime Video both launching in 2015, DAZN following in 2016, and Disney joining the competition in early 2019. One source estimated that the combined market of SVOD, transaction video-on-demand (TVOD), and electronic sell-through (EST) more than tripled in size between 2015 and 2022. A strong growth can also be seen in the share of people who use SVOD services. As a result, the average time people spend on watching video-on-demand (VOD) per weekday has increased significantly compared to the mid-2010s.
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The Japanese newspaper market was finally on the rise to reach $31B in 2024, after three years of decline. Over the period under review, consumption saw a perceptible downturn. Over the period under review, the market reached the peak level at $41.5B in 2012; however, from 2013 to 2024, consumption failed to regain momentum.
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Japan Post reported JPY4.12T in Market Capitalization this July of 2025, considering the latest stock price and the number of outstanding shares.Data for Japan Post | 6178 - Market Capitalization including historical, tables and charts were last updated by Trading Economics this last July in 2025.
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Using all stocks listed on the Japanese equity market and macroeconomic data for Japan, the dataset comprises the following series:
We have produced all return series using the following data from Datastream: (i) total return index (RI series), (ii) market value (MV series), (iii) market-to-book equity (PTBV series), (iv) total assets (WC02999 series), (v) return on equity (WC08301 series), (vi) price-to-earnings ratio (PE series), and (vii) industry (SECTOR series). We have used the generic rules suggested by Griffin, Kelly, & Nardari (2010) for excluding non-common equity securities from Datastream data. We also exclude stocks with less than twelve observations. Accordingly, our sample comprises a total number of 5,212 stocks.
REFERENCES:
Fama, E. F. and French, K. R. (1993). Common risk factors in the returns on stocks and bonds. Journal of Financial Economics, 33, 3–56. Fama, E. F. and French, K. R. (2015). A five-factor asset pricing model. Journal of Financial Economics, 116, 1–22. Griffin, J. M., Kelly, P., and Nardari, F. (2010). Do market efficiency measures yield correct inferences? A comparison of developed and emerging markets. Review of Financial Studies, 23, 3225–3277.
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Japan Tobacco International expects affordable cigarette brands to capture over 40% of the U.S. market by 2027, driven by economic factors influencing consumer preferences.
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Sompo Japan Nip stock price, live market quote, shares value, historical data, intraday chart, earnings per share and news.
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Kioxia Holdings' IPO debut highlights challenges in the NAND memory industry amid trade issues and tough competition, with significant ties to industry giants like Bain Capital and Toshiba Corp.
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Japan's main stock market index, the JP225, rose to 40065 points on July 17, 2025, gaining 1.01% from the previous session. Over the past month, the index has climbed 3.03%, though it remains 0.15% lower than a year ago, according to trading on a contract for difference (CFD) that tracks this benchmark index from Japan. Japan Stock Market Index (JP225) - values, historical data, forecasts and news - updated on July of 2025.