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JCR 2016
جستجوی مقالات
شنبه 18 مهر 1405
International Journal of Nonlinear Analysis and Applications
، جلد ۱۶، شماره ۸، صفحات ۷۳-۸۲
عنوان فارسی
چکیده فارسی مقاله
کلیدواژههای فارسی مقاله
عنوان انگلیسی
Stock price prediction using data mining algorithms in the Iranian stock market
چکیده انگلیسی مقاله
Uncertainty in the capital market means the difference between the expected values and the values that occur in reality. The design of different analysis and forecasting methods in the capital market is also due to the high value and the need to know prices in the future with more certainty or less uncertainty. To earn profit in the capital market, investors have always sought to find the right share for investment and the right price for buying and selling, and therefore all the forecasting models proposed have always sought to answer three basic questions; What share, in what time frame and at what price should be bought or sold. In this article, we will use the combined method based on LSTM and a neural fuzzy system to predict stock prices in the Iranian market. The results show that the proposed method has an accuracy of over 90% in stock price prediction.
کلیدواژههای انگلیسی مقاله
Stock Market,neural fuzzy system,lstm neural network
نویسندگان مقاله
Mohamad Reyhaninezhad'Alla |
Department of Management, Masjed-Soleiman Branch, Islamic Azad University, Masjed-Soleiman, Iran.
Saeid Ghane |
Department of Management, Masjed-Soleiman Branch, Islamic Azad University, Masjed-Soleiman, Iran
Allah Karam Salehi |
Department of Accounting, Masjed-Soleiman Branch, Islamic Azad University, Masjed-Soleiman, Iran
نشانی اینترنتی
https://ijnaa.semnan.ac.ir/article_9048_7e53ec5287f7e0231b1b596f31984c0d.pdf
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