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An Intelligent Stock Trading Decision Support System Using the Genetic Algorithm

机译:一种智能股票交易决策支持系统,遗传算法

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摘要

The authors present a simple data-driven decision support system for stock market trading using multiple technical indicators, decision trees, and genetic algorithms (GAs). It assembles technical indicators set into a decision tree based on stock trading rules and generates buy, hold, and sell classes that represent trading decisions. The main contribution of this study is the use of GAs based on a two-step classification method. This allows for selecting the relevant inputs and adapting them to the market dynamic. The GAs are used at the data input selection step and the weight selection step. Classifiers of different technical indicators are trained in the first step and combined into the trading rules in the second step. Random sampling and data input selection techniques were used to ensure the required variety of technical indicators in the first step. An evaluation shows that the proposed algorithm improved forecasting accuracy from 73.6% to 81.78%.
机译:作者使用多种技术指标,决策树和遗传算法(天然气)为股票市场交易提供简单的数据驱动决策支持系统。它组装了基于股票交易规则的决策树的技术指标,并产生代表交易决策的购买,持有和出售课程。本研究的主要贡献是基于两步分类方法使用天然气。这允许选择相关输入并将其调整到市场动态。气体用于数据输入选择步骤和权重选择步骤。不同技术指标的分类器在第一步中培训并在第二步中合并到交易规则。随机采样和数据输入选择技术用于确保第一步中所需的各种技术指标。评估表明,该算法从73.6%提高了预测精度至81.78%。

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