Machine Learning Application for Stock Market Prices Prediction.

Journal Title: IOSR Journals (IOSR Journal of Computer Engineering) - Year 2014, Vol 16, Issue 5

Abstract

Abstract: The development of a vibrant application for analyzing and predicting stock market prices is a basic tool aimed at increasing the rate of investors’ interest in stock markets. This paper explains the development and implementation of a stock price prediction application using machine learning algorithm and object oriented approach of software system development. The algorithm was used in training a set of market data collected for the period of one thousand, two hundred and three days. The implementation was done with Java programming language and Neuroph software. From the experiments conducted and observed results from the application indicates a better predictive accuracy and high minimum error. When tested with Nestle Nigerian Plc. recorded a mean squared error (MSE) and regression (R) values of 61876e-6 and 0.99975 respectively, Guinness Nigerian Plc. recorded a mean squared error (MSE) and regression (R) values of 9.95839e-7 and 0.99853 respectively and Total Nigerian Plc. recorded a mean squared error (MSE) and regression (R) values of 8.03493e-6 and 0.992193 respectively.

Authors and Affiliations

C. Ugwu and OnwuachuUzochukwu C

Keywords

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  • EP ID EP110724
  • DOI -
  • Views 128
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How To Cite

C. Ugwu and OnwuachuUzochukwu C (2014).  Machine Learning Application for Stock Market Prices Prediction.. IOSR Journals (IOSR Journal of Computer Engineering), 16(5), 112-122. https://europub.co.uk/articles/-A-110724