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            Databases for Data-Centric Geotechnics

            Site Characterization

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            Contributor(s)
            Phoon, Kok-Kwang (editor)
            Tang, Chong (editor)
            Language
            English
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            Abstract
            Databases for Data-Centric Geotechnicsforms a definitive reference and guide to databases in geotechnical and rock engineering, to enhance decision-making in geotechnical practice using data-driven methods. This first volume pertains to site characterization. The opening chapter presents an in-depth analysis of site data attributes, including the establishment of a new taxonomy of site data under “4S” (site generalizations, spatial features, sampling characteristics, and smart data) to provide a novel agenda for data-driven site characterization. Type 3 machine learning methods (disruptive value) are possible as sensors become more pervasive and more intelligent. A comprehensive overview of site characterization information is also presented with a focus on its availability, coverage, value to decision making, and challenges. The remaining 13 chapters cover databases of soil and rock properties and the application of these databases to rock socket behavior, rock classification, settlement on soft marine clays, permeability of fine-grained soils, and liquefaction among others. The databases were compiled from studies undertaken in many countries including Austria, Australia, Brazil, Canada, China, France, Finland, Germany, India, Iran, Japan, Korea, Malaysia, Mexico, New Zealand, Norway, Singapore, Sweden, Thailand, the United Kingdom, and the United States. This volume on site characterization is a companion to the volume on geotechnical structures. Databases for Data-Centric Geotechnics represents the most diverse and comprehensive assembly of database research in a single publication (consisting of two volumes) to date. It follows from Model Uncertainties for Foundation Design, also published by CRC Press, and suits specialist geotechnical engineers, researchers and graduate students.
            URI
            https://doab-dev.siscern.org/handle/20.500.12854/208133
            Keywords
            geotechnical risk,ground investigation,georisk,artificial neural networks,numerical modelling in geotechnics,numerical modelling of soils,ISSMGE TC 304 CPT,machine learning,VSPDB,Shear-Wave Velocity,Next Generation Liquefaction,Soil Profile Database,Deep Foundation Load Test Database,DFLTD,micropile and helical pile load,Databases to Interrogate Geotechnical Observations
            DOI
            10.1201/9781003441946
            ISBN
            9781003441946, 9781032578958, 9781032579887
            Publisher
            Taylor & Francis
            Publisher website
            http://www.taylorandfrancis.com/
            Publication date and place
            2025
            Imprint
            CRC Press
            Series
            Challenges in Geotechnical and Rock Engineering,
            Classification
            Mathematical theory of computation
            E-book readers, tablets and other portable devices: consumer / user guides
            Civil engineering, surveying and building
            Soil and rock mechanics
            Review type
            Proposal
            Anonymity
            Single-anonymised
            Reviewer type
            Internal editor; External peer reviewer
            Review stage
            Pre-publication
            Open review
            No
            Publish responsibility
            Publisher
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              This project received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 871069.

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