Work place: Department of Information Technology, Universitas Semarang, Semarang, Indonesia
E-mail: vivi@usm.ac.id
Website:
Research Interests: Computer Vision
Biography
Rastri Prathivi received the B.S. degree and her M.S. in Informatic Engineering in 2002 and 2014 respectively from the Dian Nuswantoro University, Semarang, Indonesia. Since 2014 she has been an assistant professor at the Information Technology Department of Universitas Semarang, Indonesia. He has published several journal and conference articles in his areas. His research interests include artificial intelligent and computer vision.
By Febrian Wahyu Christanto Victor Gayuh Utomo Rastri Prathivi Christine Dewi
DOI: https://doi.org/10.5815/ijitcs.2024.01.04, Pub. Date: 8 Feb. 2024
In the capital market, there are two methods used by investors to make stock price predictions, namely fundamental analysis, and technical analysis. In computer science, it is possible to make prediction, including stock price prediction, use Machine Learning (ML). While there is research result that said both fundamental and technical parameter should give an optimum prediction there is lack of confirmation in Machine Learning to this result. This research conducts experi-ment using Support Vector Regression (SVR) and Support Vector Machine (SVM) as ML method to predict stock price. Further, the result is compared between 3 groups of parameters, technical only (TEC), financial statement only (FIN) and combination of both (COM). Our experimental results show that integrating financial statements has a neutral impact on SVR predictions but a positive impact on SVM predictions and the accuracy value of the model in this research reached 83%.
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