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Does the use of technical amp;amp; fundamental analysis improve stock choice? : A data mining approach applied to the Australian stock market

机译:是否使用技术&基本分析改善了股票选择? :应用于澳大利亚股市的数据挖掘方法

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With the easy access to share information and data, many investors worldwide are interested in predicting stock prices. The prediction of stock prices using data mining techniques applied to technical variables has been widely researched but not much research to date has been done in applying data mining techniques to both technical and fundamental information. This paper is based on a personal approach to stock selection, using both technical and fundamental information. In this paper we construct a framework that enables us to make class predictions about industrial stock companies' financial performances. In order to have a systemized approach for the selection of stocks and a high likelihood of the performance of the stock price increasing, a Data Mining Approach is applied. A trading strategy is also designed and the performance of the stocks evaluated. Our two goals are to validate our stock selection methodology and to determine whether our trading strategy allows us to outperform the Australian market. Simulation results show that our selected stock portfolios outperform the Australian All-Ordinaries Index. Our findings justify the use of data mining techniques for classification and prediction purposes. Further, in conclusion, we can safely say that our stock selection and trading strategy outperformed the Australian Ordinary index.
机译:随着易于访问的信息和数据,全球许多投资者都有兴趣预测股票价格。使用应用于技术变量的数据挖掘技术的股票价格的预测已被广泛研究,但在将数据挖掘技术应用于技术和基本信息时,已经完成了迄今为止的研究。本文基于使用技术和基本信息的股票选择的个人方法。在本文中,我们构建了一个框架,使我们能够对工业股票公司的财务表演进行阶级预测。为了使股票选择的系统化方法和股价上涨的性能的高可能性,应用了数据挖掘方法。还设计了交易策略,并评估了股票的表现。我们的两个目标是验证我们的股票选择方法,并确定我们的交易策略是否允许我们优于澳大利亚市场。仿真结果表明,我们所选择的股票投资组合优于澳大利亚全股份目表。我们的调查结果证明了使用数据挖掘技术进行分类和预测目的。此外,总之,我们可以安全地说,我们的股票选择和交易策略表现出澳大利亚普通指数。

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