Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks

Exposure to high concentration levels of radon gas constitutes a major health hazard, being nowadays the second-leading cause of lung cancer after smoking. Facing this situation, the last years have seen a clear trend towards the search for methodologies that allow an efficient prevention of the pot...

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Main Authors: Jorge Cerqueiro-Pequeño, Alberto Comesaña-Campos, Manuel Casal-Guisande, José-Benito Bouza-Rodríguez
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:International Journal of Environmental Research and Public Health
Subjects:
Online Access:https://www.mdpi.com/1660-4601/18/1/269
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spelling doaj-826fa7b656b14cefb0b163e3af5110e12021-01-01T00:06:27ZengMDPI AGInternational Journal of Environmental Research and Public Health1661-78271660-46012021-12-011826926910.3390/ijerph18010269Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition RisksJorge Cerqueiro-Pequeño0Alberto Comesaña-Campos1Manuel Casal-Guisande2José-Benito Bouza-Rodríguez3Department of Design in Engineering, University of Vigo, 36208 Vigo, Galicia, SpainDepartment of Design in Engineering, University of Vigo, 36208 Vigo, Galicia, SpainDepartment of Design in Engineering, University of Vigo, 36208 Vigo, Galicia, SpainDepartment of Design in Engineering, University of Vigo, 36208 Vigo, Galicia, SpainExposure to high concentration levels of radon gas constitutes a major health hazard, being nowadays the second-leading cause of lung cancer after smoking. Facing this situation, the last years have seen a clear trend towards the search for methodologies that allow an efficient prevention of the potential risks derived from the presence of harmful radon gas concentration levels in buildings. With that, it is intended to establish preventive and corrective actions that might help to reduce the impact of radon exposure on people, especially in places where workers and external users must stay for long periods of time, as it may be the case of healthcare buildings. In this paper, a new methodology is developed and applied to the prevention of the risks derived from the exposure to radon gas in indoor spaces. Such methodology is grounded in the concurrent use of expert systems and regression trees that allows producing a diagram with recommendations associated to the exposure risk. The presented methodology has been implemented by means of a software application that supports the definition of the expert systems and the regression algorithm. Finally, after proving its applicability with a case study and discussing its contributions, it may be claimed that the benefits of the new methodology might lead on to an innovation in this field of study.https://www.mdpi.com/1660-4601/18/1/269radonexpert systemsdecision support systemsregression treeriskdesign science research
collection DOAJ
language English
format Article
sources DOAJ
author Jorge Cerqueiro-Pequeño
Alberto Comesaña-Campos
Manuel Casal-Guisande
José-Benito Bouza-Rodríguez
spellingShingle Jorge Cerqueiro-Pequeño
Alberto Comesaña-Campos
Manuel Casal-Guisande
José-Benito Bouza-Rodríguez
Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
International Journal of Environmental Research and Public Health
radon
expert systems
decision support systems
regression tree
risk
design science research
author_facet Jorge Cerqueiro-Pequeño
Alberto Comesaña-Campos
Manuel Casal-Guisande
José-Benito Bouza-Rodríguez
author_sort Jorge Cerqueiro-Pequeño
title Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
title_short Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
title_full Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
title_fullStr Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
title_full_unstemmed Design and Development of a New Methodology Based on Expert Systems Applied to the Prevention of Indoor Radon Gas Exposition Risks
title_sort design and development of a new methodology based on expert systems applied to the prevention of indoor radon gas exposition risks
publisher MDPI AG
series International Journal of Environmental Research and Public Health
issn 1661-7827
1660-4601
publishDate 2021-12-01
description Exposure to high concentration levels of radon gas constitutes a major health hazard, being nowadays the second-leading cause of lung cancer after smoking. Facing this situation, the last years have seen a clear trend towards the search for methodologies that allow an efficient prevention of the potential risks derived from the presence of harmful radon gas concentration levels in buildings. With that, it is intended to establish preventive and corrective actions that might help to reduce the impact of radon exposure on people, especially in places where workers and external users must stay for long periods of time, as it may be the case of healthcare buildings. In this paper, a new methodology is developed and applied to the prevention of the risks derived from the exposure to radon gas in indoor spaces. Such methodology is grounded in the concurrent use of expert systems and regression trees that allows producing a diagram with recommendations associated to the exposure risk. The presented methodology has been implemented by means of a software application that supports the definition of the expert systems and the regression algorithm. Finally, after proving its applicability with a case study and discussing its contributions, it may be claimed that the benefits of the new methodology might lead on to an innovation in this field of study.
topic radon
expert systems
decision support systems
regression tree
risk
design science research
url https://www.mdpi.com/1660-4601/18/1/269
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