DEEP LEARNING FOR STOCK MARKET TRADING: A SUPERIOR TRADING STRATEGY?
Dušan Fister, Johnathan Mun, Vita Jagrič, Timotej Jagrič
Abstract
Dušan Fister, Johnathan Mun, Vita Jagrič, Timotej Jagrič
Abstract
Deep-learning initiatives have vastly changed the analysis of data. Complex networks became accessible to anyone in any research area. In this paper we are proposing a deep-learning long short-term memory network (LSTM) for automated stock trading. A mechanical trading system is used to evaluate its performance. The proposed solution is compared to traditional trading strategies, i.e., passive and rule-based trading strategies, as well as machine learning classifiers. We have discovered that the deep-learning long short-term memory network has outperformed other trading strategies for the German blue-chip stock, BMW, during the 2010–2018 period.
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Deep-learning initiatives have vastly changed the analysis of data. Complex networks became accessible to anyone in any research area. In this paper we are proposing a deep-learning long short-term memory network (LSTM) for automated stock trading. A mechanical trading system is used to evaluate its performance. The proposed solution is compared to traditional trading strategies, i.e., passive and rule-based trading strategies, as well as machine learning classifiers. We have discovered that the deep-learning long short-term memory network has outperformed other trading strategies for the German blue-chip stock, BMW, during the 2010–2018 period.
Key concepts: Algorithmic trading, Pairs trade, Trading strategy, Stock market, Business, Alternative trading system, Financial economics, Economics