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      A K-Nearest Neighbors Algorithm in Python for Visualizing the 3D Stratigraphic Architecture of the Llobregat River Delta in NE Spain

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      Journal of Marine Science and Engineering
      MDPI AG

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          Abstract

          The k-nearest neighbors (KNN) algorithm is a non-parametric supervised machine learning classifier; which uses proximity and similarity to make classifications or predictions about the grouping of an individual data point. This ability makes the KNN algorithm ideal for classifying datasets of geological variables and parameters prior to 3D visualization. This paper introduces a machine learning KNN algorithm and Python libraries for visualizing the 3D stratigraphic architecture of sedimentary porous media in the Quaternary onshore Llobregat River Delta (LRD) in northeastern Spain. A first HTML model showed a consecutive 5 m-equispaced set of horizontal sections of the granulometry classes created with the KNN algorithm from 0 to 120 m below sea level in the onshore LRD. A second HTML model showed the 3D mapping of the main Quaternary gravel and coarse sand sedimentary bodies (lithosomes) and the basement (Pliocene and older rocks) top surface created with Python libraries. These results reproduce well the complex sedimentary structure of the LRD reported in recent scientific publications and proves the suitability of the KNN algorithm and Python libraries for visualizing the 3D stratigraphic structure of sedimentary porous media, which is a crucial stage in making decisions in different environmental and economic geology disciplines.

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          A generalized mean distance-based k-nearest neighbor classifier

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            Optimal design of measures to correct seawater intrusion

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              Estimation of hydraulic parameters of shaly sandstone aquifers from geoelectrical measurements

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                Author and article information

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                Journal
                Journal of Marine Science and Engineering
                JMSE
                MDPI AG
                2077-1312
                July 2022
                July 19 2022
                : 10
                : 7
                : 986
                Article
                10.3390/jmse10070986
                94953d13-245e-4870-b3ef-8cec8dc871f0
                © 2022

                https://creativecommons.org/licenses/by/4.0/

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