Inicio  /  Future Internet  /  Vol: 13 Par: 6 (2021)  /  Artículo
ARTÍCULO
TITULO

An AI-Enabled Stock Prediction Platform Combining News and Social Sensing with Financial Statements

Traianos-Ioannis Theodorou    
Alexandros Zamichos    
Michalis Skoumperdis    
Anna Kougioumtzidou    
Kalliopi Tsolaki    
Dimitris Papadopoulos    
Thanasis Patsios    
George Papanikolaou    
Athanasios Konstantinidis    
Anastasios Drosou and Dimitrios Tzovaras    

Resumen

In recent years, the area of financial forecasting has attracted high interest due to the emergence of huge data volumes (big data) and the advent of more powerful modeling techniques such as deep learning. To generate the financial forecasts, systems are developed that combine methods from various scientific fields, such as information retrieval, natural language processing and deep learning. In this paper, we present ASPENDYS, a supportive platform for investors that combines various methods from the aforementioned scientific fields aiming to facilitate the management and the decision making of investment actions through personalized recommendations. To accomplish that, the system takes into account both financial data and textual data from news websites and the social networks Twitter and Stocktwits. The financial data are processed using methods of technical analysis and machine learning, while the textual data are analyzed regarding their reliability and then their sentiments towards an investment. As an outcome, investment signals are generated based on the financial data analysis and the sensing of the general sentiment towards a certain investment and are finally recommended to the investors.

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