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Advancing biomedical engineering: An Agent-based approach to pulmonary edema simulation

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dc.contributor.author IAPĂSCURTĂ, Victor
dc.contributor.author FALENCIUC, Regina
dc.contributor.author MUNTEANU, Viorel
dc.contributor.author ARNAUT, Oleg
dc.date.accessioned 2026-02-15T13:52:52Z
dc.date.available 2026-02-15T13:52:52Z
dc.date.issued 2025
dc.identifier.citation IAPĂSCURTĂ, Victor; Regina FALENCIUC; Viorel MUNTEANU and Oleg ARNAUT. Advancing biomedical engineering: An Agent-based approach to pulmonary edema simulation. In: 7th International Conference on Nanotechnologies and Biomedical Engineering, ICNBME 2025, Biomedical Engineering and New Technologies for Diagnosis, Treatment, and Rehabilitation, Chisinau, Republic of Moldova, 7-10 October, 2025. Technical University of Moldova. Springer Nature, 2025, vol. 2, pp. 66-75. ISBN 978-3-032-06496-7, eISBN 978-3-032-06497-4, ISSN 1680-0737, eISSN 1433-9277. en_US
dc.identifier.isbn 978-3-032-06496-7
dc.identifier.isbn 978-3-032-06497-4
dc.identifier.issn 1680-0737
dc.identifier.issn 1433-9277
dc.identifier.uri https://doi.org/10.1007/978-3-032-06497-4_7
dc.identifier.uri https://repository.utm.md/handle/5014/35204
dc.description Acces full text: https://doi.org/10.1007/978-3-032-06497-4_7 en_US
dc.description.abstract Agent-based modeling (ABM) offers a robust framework for simulating complex physiological systems, yet its application to pulmonary edema (PE) remains underexplored. This study presents an innovative ABM, built in NetLogo, to simulate cardiogenic PE (CPE) by modeling extravascular lung water dynamics under hydrostatic pressure (HP) and oncotic pressure (OP). Using a simplified Starling equation Q = k (HP - OP), the model defines a spatial environment (capillary, ACM, alveoli) with agents like water molecules and macromolecules. Parameter tweaks (e.g., HP increase) amplify edema, showcasing the model’s flexibility. Results position this ABM as a leap forward in biomedical engineering, bridging theoretical fluid dynamics with dynamic visualization. Clinically, it lays the groundwork for decision-support tools, predicting PE progression for integration with patient-specific data. Educationally, its interactive interface empowers students to grasp PE mechanisms, enhancing learning through simulation. Limitations - constant permeability, no oxygenation - suggest refinement opportunities, such as adding gas exchange or variable ACM properties for non-cardiogenic PE. This work builds on prior ABM efforts while addressing a gap in respiratory modeling, offering a scalable platform for research and application. Future validation and extensions could transform it into a cornerstone of computational medicine, merging engineering precision with clinical and educational impact. This study underscores ABM’s untapped potential in respiratory pathophysiology. en_US
dc.language.iso en en_US
dc.publisher Springer Nature en_US
dc.rights Attribution-NonCommercial-NoDerivs 3.0 United States *
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/3.0/us/ *
dc.subject clinical use en_US
dc.subject education en_US
dc.subject pulmonary edema en_US
dc.subject simulation en_US
dc.title Advancing biomedical engineering: An Agent-based approach to pulmonary edema simulation en_US
dc.type Article en_US


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