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  Citation Number 4
 Views 21
 Downloands 1
Sentiment Aware Stock Price Forecasting using an SA-RNN-LBL Learning Model
2020
Journal:  
Engineering, Technology & Applied Science Research
Author:  
Abstract:

Abstract Stock market historical information is often utilized in technical analyses for identifying and evaluating patterns that could be utilized to achieve profits in trading. Although technical analysis utilizing various measures has been proven to be helpful for forecasting and predicting price trends, its utilization in formulating trading orders and rules in an automated system is complex due to the indeterminate nature of the rules. Moreover, it is hard to define a specific combination of technical measures that identify better trading rules and points, since stocks might be affected by different external factors. Thus, it is important to incorporate investors’ sentiments in forecasting operations, considering dynamically the varying stock behavior. This paper presents a sentiment aware stock forecasting model using a Log BiLinear (LBL) model for learning short term stock market sentiment patterns, and a Recurrent Neural Network (RNN) for learning long-term stock market sentiment patterns. The Sentiment Aware Stock Price Forecasting (SASPF) model achieves a much superior performance compared to standard deep learning based stock price forecasting models.

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2020
Author:  
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Engineering, Technology & Applied Science Research

Journal Type :   Uluslararası

Metrics
Article : 1.845
Cite : 2.898
2023 Impact : 0.733
Engineering, Technology & Applied Science Research