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Yıl 2022, , 17 - 35, 14.12.2022
https://doi.org/10.55549/epess.1222722

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A Bibliometric Analysis of Artificial Intelligence-Based Stock Market Prediction

Yıl 2022, , 17 - 35, 14.12.2022
https://doi.org/10.55549/epess.1222722

Öz

The primary purpose of this study is to conduct a scientometrics analysis of stock market forecasts
based on artificial intelligence. This research examined 1,301 publications that were published between January
2002 and June 2022. We investigated 183 journal articles among 1,329 papers. In addition to entering the
keywords into Scopus, a comprehensive dataset of relevant research papers was compiled. These papers
discussed the optimization of investment portfolios, artificial intelligence-based stock market forecasts, investor
emotions, and market monitoring. We found the most prolific documents by affiliation, the most prolific author,
the most cited papers, nations, institutions, co-authorship maps, inter-country co-authorship maps, and keywords
occurrences in this study. Co-authorship analysis network maps and keyword occurrence linkages are generated
using the VOS-viewer software. According to our findings, it is evident from the review that the body of
literature is becoming more specific and extensive. Primarily, neural networks, support vector machines, and
neuro-fuzzy systems are employed to predict the future price of a stock market index based on the composite
index's historical prices. Artificial intelligence techniques are able to consider challenges facing financial
systems when forecasting time series. Our findings provide actionable guidance on how artificial intelligence
can be used to predict stock market movements for market participants, including traders, investors, and
financial institutions.

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Farman Alı Bu kişi benim

Pradeep Surı Bu kişi benim

Yayımlanma Tarihi 14 Aralık 2022
Yayımlandığı Sayı Yıl 2022

Kaynak Göster

APA Alı, F., & Surı, P. (2022). A Bibliometric Analysis of Artificial Intelligence-Based Stock Market Prediction. The Eurasia Proceedings of Educational and Social Sciences, 27, 17-35. https://doi.org/10.55549/epess.1222722