Using classification techniques to predict gold price movement

Wedad Ahmed Al-Dhuraibi, J. Ali
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引用次数: 7

Abstract

In our day to day life, predictability of gold's price is significant in many domains such as economics, trading, investment, and financial and political environments. Better investment decision could be made when gold price values are accurately predicted. The main objective of this research is to forecasts whether the price of gold will rise or decline in the near future. Decision Tree, Support Vector Machine (SVM), K-Nearest Neighbor (KNN), and Linear Regression are all different classification algorithms that have been used in this paper to predict the gold price movement direction. The performance of each of these algorithms has been investigated while using the Rapidminer software.
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运用分类技术预测黄金价格走势
在我们的日常生活中,黄金价格的可预测性在经济、贸易、投资、金融和政治环境等许多领域都很重要。当黄金价格被准确预测时,可以做出更好的投资决策。本研究的主要目的是预测黄金价格在不久的将来是上涨还是下跌。决策树(Decision Tree)、支持向量机(SVM)、k近邻(KNN)和线性回归(Linear Regression)都是本文中用于预测金价走势的不同分类算法。在使用Rapidminer软件时,对每种算法的性能进行了研究。
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