Ramachandran, Lalitha and S, Shanthana and Gokulakrishnan, A. and Kumar, Sunil and KS, Vishal and Sahaana, G. (2024) Decentralized Financial Stocks Prediction Using Deep Regression Learning. In: 2024 2nd International Conference on Disruptive Technologies (ICDT), Greater Noida, India.
Full text not available from this repository. (Request a copy)Abstract
The financial industry is undergoing a revolution right now as a result of decentralised finance (DeFi), which offers innovative and decentralised solutions. In this context, investors are required to place a high value on their ability to foresee the performance of stocks. Decentralised finance is characterised by its decentralised structure, which makes it more challenging to make accurate predictions regarding stock prices. Due to the fact that they are unable to keep up with the dynamic nature of decentralised markets, traditional models produce estimates that are less than ideal. Within the present body of research, which primarily concentrates on centralised financial markets, there is a deficiency in the availability of specialist approaches for predicting DeFi stock prices. The purpose of this research is to investigate historical data, identify trends, and create predictions in order to forecast the stock values of the decentralised financial sector for the future. Deep Regression Learning is a subset of machine learning technology. By utilising deep neural networks to comprehend intricate data links, the model is able to improve its ability to make accurate predictions. When it comes to forecasting the stocks of decentralised financial institutions, the results demonstrate that the DREGL model that was recommended provides accurate results. The accuracy of the model is superior to that of traditional approaches, demonstrating that it has the potential to facilitate decision-making in the decentralised and unpredictable market for decentralised finance.
Item Type: | Conference or Workshop Item (Paper) |
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Subjects: | Computer Science Engineering > Deep Learning |
Divisions: | Commerce |
Depositing User: | Mr IR Admin |
Date Deposited: | 08 Oct 2024 09:42 |
Last Modified: | 08 Oct 2024 09:42 |
URI: | https://ir.vistas.ac.in/id/eprint/9475 |