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Machine learning algorithms for financial risk prediction: A performance comparison

Lemuel Kenneth David · Jianling Wang · Idrissa I. Cisse · Vanessa Angel
10.65453/ijar.v9i2.1226 381 Views 3 Citations
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Abstract

This study evaluates the performance of various machine learning (ML) models in predicting and mitigating financial risks. Using data from Bloomberg, Thomson Reuters Eikon, Yahoo Finance, and FRED (2014-2023), we compare neural networks, decision trees, random forests, and support vector machines. Our findings show that neural networks and random forests outperform traditional models, offering superior predictive accuracy and robust risk mitigation strategies. The study provides practical insights for implementing ML algorithms in financial risk management, highlighting the potential for enhanced decision-making and improved financial stability.

Cite this Article (APA)
Lemuel, K. D., Jianling, W., Idrissa, I. C., Vanessa, A. (2024). Machine learning algorithms for financial risk prediction: A performance comparison. International Journal of Accounting Research. https://doi.org/10.65453/ijar.v9i2.1226
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Published in
ISSN 2617-9954
Quartile Q2
AMS Score 90
Field Economics & Finance
Publisher Arabian Open Journal Publishing
Country 🇦🇪 UAE
View Journal Profile →
Authors
Publication Details
Year 2024
Language English
Added 02 Aug 2026