Artificial neural networks learning for high-frequency data prediction—big data approach based on genetic and micro-genetic algorithms
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Springer Nature
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Abstract
This study investigates the use of state-of-the-art software tools available on contemporary desktop computing platforms to enhance predictive modeling with machine learning methods. Existing research has not sufficiently examined how efficient utilization of such tools-specifically state-space search reduction, operation parallelization, and mechanisms for escaping local optima-affects model performance when applied to large-scale high-frequency datasets. To address this gap, we introduce new predictive models that explicitly leverage these advanced software capabilities. We further propose strategies for overcoming local optima in neural-network training and for parameter tuning in population-based metaheuristic algorithms used for forecasting high-frequency financial data. Empirical evaluation is conducted on one-minute EUR/CZK exchange rate data from 2018 and on 17 high-frequency Amazon stock price datasets spanning 2005-2021. The results demonstrate that incorporating modern software optimization tools not only improves predictive accuracy but also significantly reduces computation time, making the approach well-suited for real-time forecasting of highly dynamic financial time series.
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ARMA models, MLP neural network, GA and MGA learning algorithms, Schwefel function, computer operating systems, computer libraries
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Computational Economics. 2026.
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Publikační činnost VŠB-TUO ve Web of Science / Publications of VŠB-TUO in Web of Science
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Publikační činnost Katedry systémového inženýrství a informatiky/ Publications of Department of System Engineering and Informatics(157)
Články z časopisů s impakt faktorem / Articles from Impact Factor Journals
OpenAIRE
Publikační činnost Katedry systémového inženýrství a informatiky/ Publications of Department of System Engineering and Informatics(157)
Články z časopisů s impakt faktorem / Articles from Impact Factor Journals