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A Stock Market Decision Support System with a Hybrid Evolutionary Algorithm for Many-Core Graphics Processors

机译:一种用于许多核心图形处理器的混合进化算法的股票市场决策支持系统

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This paper proposes a computational intelligence approach to stock market decision support systems based on a hybrid evolutionary algorithm with local search for many-core graphics processors. Trading decisions come from trading experts built on the basis of a set of specific trading rules analysing financial time series of recent stock price quotations. Constructing such trading experts is an optimization problem with a large and irregular search space that is solved by an evolutionary algorithm, based on Population-Based Incremental Learning, with additional local search. Using many-core graphics processors enables not only a reduction in the computing time, but also a combination of the optimization process with local search, which significantly improves solution qualities, without increasing the computing time. Experiments carried out on real data from the Paris Stock Exchange confirmed that the approach proposed outperforms the classic approach, in terms of the financial relevance of the investment strategies discovered as well as in terms of the computing time.
机译:本文提出了一种基于混合进化算法与局部搜索的多核心图形处理器的计算智能的方法来股市决策支持系统。交易决策来自建立了一套具体的交易规则分析金融时间序列近期现货报价的基础上交易的专家。构建这样的交易专家是一个优化问题,由进化算法解决的基础上,基于人口增量学习,与更多的本地搜索大和不规则的搜索空间。使用多核心图形处理器,不仅能够在计算时间的减少,也与本地搜索,这显著提高解决方案的质量优化工艺相结合,在不增加计算时间。从巴黎证券交易所真实数据进行的实验证实,这种方法提出了优于传统方法,在投资策略的财务相关的条款中的计算时间方面发现以及。

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