Stock Market Prediction using Machine Learning Techniques

Authors

  • Saurav Agrawal  Department of Computer Science and Engineering Parul University, Limda, Vadodara, Gujarat, India
  • Dev Thakkar  Department of Computer Science and Engineering Parul University, Limda, Vadodara, Gujarat, India
  • Dhruvil Soni  Department of Computer Science and Engineering Parul University, Limda, Vadodara, Gujarat, India
  • Krunal Bhimani  Department of Computer Science and Engineering Parul University, Limda, Vadodara, Gujarat, India
  • Dr. Chirag Patel  Department of Computer Science and Engineering Parul University, Limda, Vadodara, Gujarat, India

DOI:

https://doi.org//10.32628/CSEIT1952296

Keywords:

Stock Market, Linear Regression Model, Logistic Regression Model, Machine Learning, Artificial Neural Network, Hidden Layer

Abstract

Prediction of Stock Market has been an area of interest for investors as well as researchers from a long time due to its intrinsic volatility, complex and regularly changing in nature makes it difficult to make reliable prediction. So, predicting daily behaviour of stock market is a serious challenge for investors and corporate stockholders. The objective of this paper is to predict the market performance by using Artificial Neural Network. These techniques are used to classify the stock in 3 categories – Buy, Hold and Sell, based on historical data while providing an in-depth understanding of the models being used. The Study shows that logistic regression model compared to Linear Regression can be used by the investors, individual as well as fund managers to predict “good or poor” stock. Because of the data being Non-Linear we will be using artificial neural network to classify Non-linear data using hidden layers.

References

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Published

2019-04-30

Issue

Section

Research Articles

How to Cite

[1]
Saurav Agrawal, Dev Thakkar, Dhruvil Soni, Krunal Bhimani, Dr. Chirag Patel, " Stock Market Prediction using Machine Learning Techniques, IInternational Journal of Scientific Research in Computer Science, Engineering and Information Technology(IJSRCSEIT), ISSN : 2456-3307, Volume 5, Issue 2, pp.1099-1103, March-April-2019. Available at doi : https://doi.org/10.32628/CSEIT1952296