Analyzing the critical steps in deep learning-based stock forecasting: a literature review
Zinnet Duygu Akşehir,
Erdal Kılıç
Abstract:Stock market or individual stock forecasting poses a significant challenge due to the influence of uncertainty and dynamic conditions in financial markets. Traditional methods, such as fundamental and technical analysis, have been limited in coping with uncertainty. In recent years, this has led to a growing interest in using deep learning-based models for stock prediction. However, the accuracy and reliability of these models depend on correctly implementing a series of critical steps. These steps include dat… Show more
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