Abstract
In the last decade, High-Frequency Trading (HFT) has become a popular issue in the futures market, which has attracted much attention from numerous researchers. In this study, an intelligent decision support system is proposed for apple futures high-frequency trading. First, three eXtreme Gradient Boosting (XGBoost) based models use the feature inputs from multiple time scales for return and direction prediction. Then, based on a pre-designed trading rule, the signals of long and short-selling are determined, and corresponding transactions are executed. In order to retain considerable profits in time and to avoid serious losses possibly caused by sudden and huge price changes toward the opposite direction as predictions, a position closing function is implemented in the trading rule. Meanwhile, Particle Swarm Optimization (PSO) is employed to optimize the parameters of the trading rule as well as the XGBoost parameters. By evaluating the experimental results, we observed that the proposed approach successfully achieved the best performance in terms of direction prediction accuracy, transaction returns, as well as return/risk ratio. It could be inferred from the experimental results that the proposed approach could provide decision support and beneficial reference for market traders involved in high-frequency trading of the apple futures.
Highlights
In the last two decades, Chinese futures markets have been rapidly developed
All of those hit ratio results are smaller than that of XGBoost-20, demonstrating that XGBoost based method is superior to Support Vector Machine (SVM), Artificial Neural Network (ANN), and RF based methods for direction prediction in 30-min apple futures during the
In this research, an intelligent decision support system based on a multiple time scale XGBoost was developed for movement direction forecasting and simulation trading in the apple futures market
Summary
As an important form of Chinese financial market, futures markets have relatively high liquidity than stock and foreign exchange markets, which can be used to hedge the trader’s investment portfolios to prevent unexpected market risks in the future. A great number of market traders and relevant companies have participated in apple futures trading in recent years. Accurate forecasting of apple futures price movement has become extremely crucial to the benefits of them. It is of great practical significance for scholars to design and develop an intelligent decision-making system for apple futures direction prediction and trading
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