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Titel: Input space optimization for neural network-based forecasting of non-stationary time series
Sonstige Titel: 9th International Workshop on Computer Modeling and Intelligent Systems, CMIS-2026 : Conference Paper 5 May 2026, Zaporizhzhia
Autoren: Kovaliv, O.
Sidenko, I.
Zhukov, Y.
Kondratenko, Y.
Stichwörter: exogenous variables
forecasting
infectious diseases
input space optimization
machine learning
neural networks
time series
Erscheinungsdatum: 2026
Herausgeber: CEUR-WS
Zusammenfassung: Forecasting time series under instability remains a challenging task due to structural discontinuities, nonstationarity, and the influence of external factors. This paper proposes a forecasting approach focused on optimizing the model's input space rather than architectural changes to the forecasting algorithm itself. This study examines the impact of exogenous variables on neural network-based forecasting using data on infectious disease incidence in Ukraine. A baseline neural network forecasting model based solely on lagged target values is compared with models incorporating exogenous information. A systematic procedure for constructing and optimizing the input space is proposed, including evaluating various subsets of exogenous variables for fixed model architecture, training parameters, and forecast horizon. Experimental results demonstrate that the proposed input space optimization strategy leads to a significant reduction in forecast error, and these improvements are achieved without increasing model complexity or changing the training procedure. Copyright © 2026 for this paper by its authors.
Beschreibung: Kovaliv, O., Sidenko, I., Zhukov, Y., & Kondratenko, Y. (2026). Input space optimization for neural network-based forecasting of non-stationary time series : 9th International Workshop on Computer Modeling and Intelligent Systems, CMIS-2026 : Conference Paper 5 May 2026, Zaporizhzhia. CEUR Workshop Proceedings, Vol. 4220, (189–200). CEUR-WS, Zaporizhzhia.
URI: https://www.scopus.com/pages/publications/105045220383?discoveryEventID=f4b41bff-7da9-4f69-b528-aab8a6bfd168&alertType=scopusaffil&origin=SingleRecordEmailAlert&dgcid=raven_sc_affil_ru_ru_email
https://dspace.chmnu.edu.ua/jspui/handle/123456789/3363
ISSN: 16130073
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