Stock Market Prediction using Data Mining Techniques

Authors

  • Karunesh Makker  Computer Engineering Department, NMIMS MPSTME, Shirpur, Maharashtra, India
  • Prince Patel  Computer Engineering Department, NMIMS MPSTME, Shirpur, Maharashtra, India
  • Hrishikesh Roy  Computer Engineering Department, NMIMS MPSTME, Shirpur, Maharashtra, India
  • Sonali Borse  Computer Engineering Department, NMIMS MPSTME, Shirpur, Maharashtra, India

DOI:

https://doi.org//10.32628/CSEIT206290

Keywords:

Machine Learning, Sentiment Analysis, Stock Market

Abstract

Stock market is a very volatile in-deterministic system with vast number of factors influencing the direction of trend on varying scales and multiple layers. Efficient Market Hypothesis (EMH) states that the market is unbeatable. This makes predicting the uptrend or downtrend a very challenging task. This research aims to combine multiple existing techniques into a much more robust prediction model which can handle various scenarios in which investment can be beneficial. Existing techniques like sentiment analysis or neural network techniques can be too narrow in their approach and can lead to erroneous outcomes for varying scenarios. By combing both techniques, this prediction model can provide more accurate and flexible recommendations. Embedding Technical indicators will guide the investor to minimize the risk and reap better returns.

References

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Published

2020-04-30

Issue

Section

Research Articles

How to Cite

[1]
Karunesh Makker, Prince Patel, Hrishikesh Roy, Sonali Borse, " Stock Market Prediction using Data Mining Techniques, IInternational Journal of Scientific Research in Computer Science, Engineering and Information Technology(IJSRCSEIT), ISSN : 2456-3307, Volume 6, Issue 2, pp.310-313, March-April-2020. Available at doi : https://doi.org/10.32628/CSEIT206290