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Decision support system for investing in stock market by using OAA-Neural Network

机译:使用OAA-Neural网络投资股票市场的决策支持系统

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In stock market, successful investors can earn maximum profits depended on a stock selection and a suitable time on trading. Generally, investors use two statistical techniques for making a decision, which are the fundamental analysis and the technical analysis. Recently, machine learning models which are a part of artificial intelligence, has been applied to enhance investors for investment. A number of machine learning models have been investigated for stock prediction such as Genetic Algorithms (GAs), Support Vector Machines (SVMs) and Neural Network (NN). In this paper, several multiclass classification techniques using neural networks are investigated. The multi-binary classification experiments using One-Against-One (OAO) and One-Against-All (OAA) techniques are tested and they are compared with the traditional neural network. Furthermore, an alternative data preparation and a data selection process are proposed. The experimental results show that the multi-binary classification using OAA technique outperforms other techniques. It can provide the return on investment greater than the traditional analysis techniques.
机译:在股票市场中,成功的投资者可以获得最大的利润依赖于股票选择和适当的交易时间。一般来说,投资者使用两种统计技术做出决定,这是基本分析和技术分析。最近,作为人工智能的一部分的机器学习模式,已应用于加强投资投资。已经研究了许多机器学习模型,用于库存预测,例如遗传算法(气体),支持向量机(SVM)和神经网络(NN)。在本文中,研究了使用神经网络的几种多标准分类技术。测试使用单反相反(OAO)和一个反对所有(OAA)技术的多二进制分类实验,并与传统的神经网络进行比较。此外,提出了替代数据准备和数据选择过程。实验结果表明,使用OAA技术的多二元分类优于其他技术。它可以提供比传统分析技术更大的投资回报。

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