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A Comparison of Genotype Representations to Acquire Stock Trading Strategy Using Genetic Algorithms

机译:基因型表示使用遗传算法获得股票交易策略的基因型表示

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Automatic trading methods are important issues in recent financial markets. In this paper, we compare some genotype coding methods of technical indicators and their parameters to acquire stock trading strategy using genetic algorithms (GAs). In previous works, the locus-based representation is widely used for encoding technical indicators on chromosomes in GAs, and the direct coding is also widely adopted for encoding the parameters of the indicators. However, these conventional methods are not so effective for the GA search. Therefore, we propose a new genotype coding methods, namely the allele-based indirect coding. We examine the performance of the proposed and conventional coding methods in stock trading of twenty companies in the first section of the Tokyo Stock Exchange for recent ten years. In our empirical results, the allele-based indirect coding is superior to the other ones both on the cumulative profits and the computational costs.
机译:自动交易方法是最近金融市场的重要问题。在本文中,我们比较了一些技术指标的基因型编码方法及其参数使用遗传算法(气体)获得股票交易策略。在以前的作品中,基于轨迹的表示广泛用于编码气体染色体上的技术指标,并且还广泛采用直接编码来编码指示器的参数。但是,这些传统方法对于GA搜索并不是如此有效。因此,我们提出了一种新的基因型编码方法,即基于等位基因的间接编码。我们研究了近十年来东京证券交易所第一部分二十家公司的股票交易中拟议和常规编码方法的表现。在我们的经验结果中,基于等位基因的间接编码在累积利润和计算成本上优于另一个。

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