Accurately Forecasting Stock Prices using LSTM and GRU Neural Networks

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Details

Stocks or shares are securities that confirm the participation or ownership of a person or entity in a company. Stocks are an attractive investment option because they can generate large profits compared to other businesses, however, the risk can also result in large losses in a short time. Thus, minimizing the risk of loss in stock buying and selling transactions is very crucial and important, and it requires careful attention to stock price movements. Technical factors are one of the methods that are used in learning the prediction of stock price movements through past historical data patterns on the stock market. Therefore, forecasting models using technical factors must be careful, thorough, and accurate, to reduce risk appropriately. This book presents the LSTM and GRU Neural Networks to build stock price forecasting models in groups using technical factors. The investigation uses seven years of benchmark time-series data on daily stock price movements with the same features as several previous related works to show differences in results. Time-series data on stock prices are grouped to follow the general pattern of stock price movements in the stock exchange market.

Autorentext

Armin Lawi é o Chefe do Departamento de Informática da Universidade de Hasanuddin, Indonésia. Recebeu o Bacharelato em Matemática na Universidade Hasanuddin, Mestrado em Ciência Informática e Engenharia da Comunicação pela Universidade Kyushu, e Doutoramento em Ciência Informática e Engenharia de Sistemas pelo Instituto de Tecnologia Kyushu, Japão.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09786204190921
    • Sprache Englisch
    • Genre Economy
    • Größe H3mm x B150mm x T220mm
    • Jahr 2021
    • EAN 9786204190921
    • Format Kartonierter Einband
    • ISBN 978-620-4-19092-1
    • Veröffentlichung 24.08.2021
    • Titel Accurately Forecasting Stock Prices using LSTM and GRU Neural Networks
    • Autor Armin Lawi , Eka Kurnia
    • Untertitel A Deep Learning approach for forecasting stock price time-series data in groups
    • Gewicht 87g
    • Herausgeber LAP LAMBERT Academic Publishing
    • Anzahl Seiten 52

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