Stock Price Prediction using Reinforcement Learning and Feature Extraction
R. Sathya1, Prateek Kulkarni2, Momin Nawaf Khalil3, Shishir Chandra Nigam4

1R. Sathya, Department of Computer Science And Engineering at SRM IST Ramaparam, Chennai, India.
2Prateek Kulkarni, Department of Computer Science And Engineering at SRM IST Ramaparam, Chennai, India.
3Momin Nawaf Khalil, Department of Computer Science And Engineering at SRM IST Ramaparam, Chennai, India.
4Shishir Chandra Nigam, Department of Computer Science And Engineering at SRM IST Ramaparam, Chennai, India.
Manuscript received on March 12, 2020. | Revised Manuscript received on March 25, 2020. | Manuscript published on March 30, 2020. | PP: 3324-3327 | Volume-8 Issue-6, March 2020. | Retrieval Number: F8606038620/2020©BEIESP | DOI: 10.35940/ijrte.F8606.038620

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© The Authors. Blue Eyes Intelligence Engineering and Sciences Publication (BEIESP). This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)

Abstract: The goal of this project is to develop a new technique to predict stock worth’s through the usage of Reinforcement Learning & Sentiment analysis from social media. During this paper we are going to analyze economical technique which may predict stock movement accurately using both Historical & Real-time Data. The Q Learning based approach will be used to predict these Stocks over a Partially Observable Markov Decision Process comprising of any number of Stocks taken as a State & providing 3 actions which are Hold, Sell or Buy. Additionally, Social media offers a robust outlet for people’s thoughts and feelings it’s a fast-ever-growing supply of texts starting from everyday observations to concerned discussions. Using social media comments & tweets analysis regarding a Stock, an efficient data can be obtained which can help in determining the overall public review of the Stock. Using these two distinctive approaches together, an efficient technique can be developed to predict Stocks Prices with more accuracy.
Keywords: Reinforcement Learning & Sentiment Analysis From Social Media.
Scope of the Article: Social Sciences.