Cloud Based Stock Price Prediction Using News Sentiment Analysis

June 2021
Vol-7, Issue-3
Paper ID: 14463
ISSN: 2395-4396
Downloads: 0

Abstract & Details

Research Area
Computer Engineering
Keywords
Stock Price Prediction Machine Learning Linear Regression News Sentiment Analysis
Abstract
Stock price prediction is a difficult task, since it very depending on the demand of the stock, and there is no certain variable that can precisely predict the demand of one stock each day. However, Efficient Market Hypothesis (EMH) said that stock price also depends on new information significantly. One of many information sources is people’s opinion in social media. People’s opinion about products from certain companies may determine the company’s reputation and thus affecting people’s decision to buy the stock of the company. When using opinion as primary data, it is necessary to make a suitable analysis of it. A famous example using opinion as data is sentiment analysis. Sentiment analysis is a process to determine emotion/feeling within people opinion about something, in this case products of some companies. There are some researchers about sentiment analysis used to predict the stock prices. Bollen on his research concludes that people opinion on social media such as Twitter can predict DJIA value with 87.6 percent accuracy. This shows that there is a relation between sentiment analysis and stock prices. Our purpose on this research is to predict the Indonesian stock market using simple sentiment analysis. Naïve Bayes and Random Forest algorithm are used to classify tweet to calculate sentiment regarding a company. The results of sentiment analysis are used to predict the company stock price. We use linear regression method to build the prediction model. Our experiment shows that prediction models using previous stock price and hybrid feature as predictor gives the best prediction with 0.9989 and 0.9983 coefficient of determination.

Author Information

# Name Institute / Affiliation
1 Prof. Naresh Thoutam Sandip Institute Of Technology And Research Center, Nashik
2 Pavan Bhavsar Sandip Institute Of Technology And Research Center, Nashik
3 Shubham Gawade Sandip Institute Of Technology And Research Center, Nashik
4 Hemant Chavan Sandip Institute Of Technology And Research Center, Nashik
5 Abhishek Gunjal Sandip Institute Of Technology And Research Center, Nashik

How to Cite

Use the following formats to cite this article in your research.

APA Style
Thoutam, Prof. Naresh, Bhavsar, Pavan, Gawade, Shubham, Chavan, Hemant, & Gunjal, Abhishek (2021). Cloud Based Stock Price Prediction Using News Sentiment Analysis. International Journal of Advance Research and Innovative Ideas In Education, 7(3), 1702-1704.
MLA Style
Thoutam, Prof. Naresh, et al. "Cloud Based Stock Price Prediction Using News Sentiment Analysis." International Journal of Advance Research and Innovative Ideas In Education, vol. 7, no. 3, 2021, pp. 1702-1704.
IEEE Style
Prof. Naresh Thoutam, Pavan Bhavsar, Shubham Gawade, Hemant Chavan, and Abhishek Gunjal, "Cloud Based Stock Price Prediction Using News Sentiment Analysis," International Journal of Advance Research and Innovative Ideas In Education, vol. 7, no. 3, pp. 1702-1704, 2021.
Vancouver Style
Thoutam Prof. Naresh, Bhavsar Pavan, Gawade Shubham, Chavan Hemant, Gunjal Abhishek. Cloud Based Stock Price Prediction Using News Sentiment Analysis. International Journal of Advance Research and Innovative Ideas In Education. 2021;7(3):1702-1704.
Harvard Style
Thoutam, Prof. Naresh, Bhavsar, Pavan, Gawade, Shubham, Chavan, Hemant, & Gunjal, Abhishek (2021) 'Cloud Based Stock Price Prediction Using News Sentiment Analysis', International Journal of Advance Research and Innovative Ideas In Education, 7(3), pp. 1702-1704.
Chicago Style
Thoutam, Prof. Naresh, et al. "Cloud Based Stock Price Prediction Using News Sentiment Analysis." International Journal of Advance Research and Innovative Ideas In Education 7, no. 3 (2021): 1702-1704.
Turabian Style
Thoutam, Prof. Naresh, et al. "Cloud Based Stock Price Prediction Using News Sentiment Analysis." International Journal of Advance Research and Innovative Ideas In Education 7, no. 3 (2021): 1702-1704.

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