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Title: | STOCK PRICE PREDICTION USING DISTRIBUTIVE COMPUTING |
Authors: | MEENA, RAVITA |
Keywords: | STOCK PRICE PREDICTION DISTRIBUTIVE COMPUTING APACHE SPARK |
Issue Date: | Jun-2018 |
Series/Report no.: | TD-4193; |
Abstract: | The stock market, equity market or share market is the aggregation of buyers and sellers (a loose network of economic transactions , not a physical facility or a discrete entity) of stocks (also called shares); these may include securities listed on a stock exchange as well as those only traded privately. In today’s world Stock Market is a great factor in determining the state of the economy of a country. The movement of share market determines the movement of economy. Hence everyone tries to determine the movement of market on a particular day. Here we present a methodology of finding the important stocks for day to day traders with reduced time and considerable accuracy. The data sets being used are a subset of published stock data by the Bombay Stock Exchange(BSE) and National Stock Exchange(NSE) in the past one year. We collected the sentiment score of a stock. Sentiment score is a score which gives us an idea about how people feel about buying a particular stock. We used www.moneycontrol.com for finding the sentiment score associated with a particular stock, which was further used for training the neural network model. The neural network would work as a non-linear binary classifier that would predict the progress of the company using the data for the present day. Due to the large amount of data required and quicker real-time feedbacks to be supplied, we will be using Apache Spark. Apache Spark is an open source cluster computing framework for implementing distributed computing. In this framework a bigger job is distributed among a group of workers so as to reduce the actual time required for the job. With the help of Apache Spark and neural network, we would be able to find a list of companies listed on the stock market that have the tendency to go up in the day in a very short period of time. |
URI: | http://dspace.dtu.ac.in:8080/jspui/handle/repository/16302 |
Appears in Collections: | M.E./M.Tech. Computer Engineering |
Files in This Item:
File | Description | Size | Format | |
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Thesis_ravita.pdf | 999.13 kB | Adobe PDF | View/Open |
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