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Literature review on Artificial Neural Networks Techniques Application for Stock Market Prediction and as Decision Support Tools

机译:人工神经网络技术在股票市场预测和决策支持工具中的文献综述

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Objectives: This literature review is aiming to explore the use Artificial Neural Network (ANN) techniques in the field of stock market prediction. Design: Content analysis research technique. Data sources: Information retrieved from ProQuest electronic databases. Review methods: Utilizing key terms and phrases associated with Artificial Neural Network Stock Market Prediction from 2013-2018. Out of the 129 scholarly journal reviewed, there are 4 stock market studies met the inclusion criteria. The analysis and the evaluation includes 6 ANN derivatives techniques used to predict. Results: Findings from the reviewed studies revealed that all studies shows consistency that the accuracy rate of ANN stock market prediction is high. 2 Studies shows accuracy above 90%, 2 studies shows accuracy above 50%. Conclusion: This study reveals that the ability of ANN shows consistency of an accuracy rate of stock market prediction. Four method in predicting stock market had an accuracy above 95%. The highest accuracy achieved by using Signal Processing/Gaussian Zero-Phase Filter (GZ-Filter) with 98.7% prediction accuracy.
机译:目的:这篇文献综述旨在探索在股市预测领域中使用人工神经网络(ANN)技术。设计:内容分析研究技术。数据源:从ProQuest电子数据库中检索到的信息。审查方法:利用与2013-2018年人工神经网络股票市场预测相关的关键术语和短语。在所审查的129种学术期刊中,有4项符合纳入标准的证券市场研究。分析和评估包括用于预测的6种ANN衍生技术。结果:经过审查的研究结果表明,所有研究均表明ANN股票市场预测的准确率很高。 2个研究表明准确度在90%以上,2个研究表明准确度在50%以上。结论:这项研究表明,人工神经网络的能力显示出股票市场预测准确率的一致性。四种预测股市的方法的准确性都在95%以上。通过使用信号处理/高斯零相滤波器(GZ-Filter)可获得98.7%的预测精度的最高精度。

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