Identification of salinization processes in coastal aquifers using a fuzzy logic and data mining based methodology: study case in a Mediterranian coastal aquifer (Spain)

dc.contributor.authorRenau Pruñonosa, Arianna
dc.contributor.authorEsteller, María Vicente
dc.contributor.authorAroba Páez, Javier
dc.contributor.authorGrande Gil, José Antonio
dc.contributor.authorMorrel, Ignacio
dc.contributor.authorTorre Sánchez, María Luisa de la
dc.contributor.authorBallesteros, Bruno J.
dc.date.accessioned2026-03-16T11:07:15Z
dc.date.available2026-03-16T11:07:15Z
dc.date.issued2025
dc.description.abstractIn coastal aquifers, the seawater intrusion can mask the effects of salinity regional groundwater flows, connate waters mobilization or contaminant process. Therefore, to discriminate between all the processes that have taken place in the coastal aquifer, is a complex task. Normally, traditional hydrogeochemical methods (e.g., Piper and Durov) together with statistical multivariate techniques (e.g., cluster and factorial analysis) and other methods (e.g., ionic deltas and isotopic studies) have been used to understand the hydrogeochemistry of aquifers and to confirm previous hypothesis. This paper presents a characterization of the salinization process in coastal aquifers, by means a fuzzy logic and data mining based methodology, which has not been used before for this purpose in a coastal aquifer. The proposed fuzzy methodology is based on the use of the data mining computer tool Predictive Fuzzy Rules Generator (PreFuRGe). The results have been obtained by processing groundwater samples analyses with PreFuRGe. The parameters used for the experimentation have been: temperature, electric conductivity, redox potential, total dissolved solids, silicon dioxide, oxidability, major ions (chloride, sulphate, bicarbonate, nitrate, calcium, magnesium, sodium and potassium), and minor ions (arsenic, bromide, lithium, boron, strontium, chromium and fluoride). The application of this method has made it possible to differentiate several overlapping hydrogeochemical processes, such as seawater intrusion, the entry of high salinity regional groundwater flows with high concentrations of strontium, magnesium, lithium and sulphates, and the effect of contamination from agricultural activities, with the presence of nitrates. The qualitative obtained results in this paper have been compared to previous research carried out in the same coastal aquifer, and it is proved that the used fuzzy methodology is a powerful tool for discriminating between overlapping geogenic and anthropogenic processes in coastal aquifers.
dc.description.departmentTecnologías de la Información
dc.description.departmentIngeniería Minera, Mecánica, Energética y de la Construcción
dc.description.sponsorshipOpen Access funding provided thanks to the CRUE-CSIC agreement with Springer Nature. The funding has been received from The Coca-Cola Foundation (Atlanta, USA), with the support of Coca-Cola Iberia.
dc.identifier.citationRenau-Pruñonosa, A., Esteller, M. V., Aroba, J., Grande, J. A., Morell, I., de la Torre, M. L., García-Menéndez, O., & Ballesteros, B. J. (2025). Identification of salinization processes in coastal aquifers using a fuzzy logic and data mining based methodology: study case in a Mediterranian coastal aquifer (Spain). Environmental Earth Sciences, 84(4). https://doi.org/10.1007/s12665-024-12006-1
dc.identifier.doi10.1007/s12665-024-12006-1
dc.identifier.issn1866-6280
dc.identifier.issn1866-6299 (electrónico)
dc.identifier.urihttps://hdl.handle.net/10272/28083
dc.language.isoeng
dc.publisherSpringer
dc.rights.accessRightsopen access
dc.subject.otherSeawater intrusion
dc.subject.otherContaminant processes
dc.subject.otherFuzzy logic
dc.subject.otherData mining
dc.subject.otherHydrogeochemical analysis
dc.subject.otherMediterranean coastal aquifer
dc.titleIdentification of salinization processes in coastal aquifers using a fuzzy logic and data mining based methodology: study case in a Mediterranian coastal aquifer (Spain)
dc.typejournal article
dc.type.hasVersionVoR
dspace.entity.typePublication
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relation.isAuthorOfPublication0e0af456-1467-45be-932e-38bd37b0e362
relation.isAuthorOfPublication30222025-b03a-4e34-82a7-16de67477e67
relation.isAuthorOfPublication.latestForDiscovery7f2e6ad1-4747-4d24-8588-40cbc41e3382

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