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A Provenance Study of French Limestone Based on Variable Selection From Compositional Profiles

Datos Bibliográficos

ID8354531
AutoresC Pizarro (0000-0001-7645-922X, Universidad de La Rioja, autor de correspondencia), J M GONZÁLEZ‐SÁIZ, J M González-Sáiz (0000-0002-4463-8343, Universidad de La Rioja), I ESTEBAN‐DÍEZ, I Esteban-Dı́ez (Universidad de La Rioja), C SÁENZ‐GONZÁLEZ, C Sáenz-González (Universidad de La Rioja), N PÉREZ‐DEL‐NOTARIO, N Pérez-del-Notario (0000-0002-6763-5436, Universidad de La Rioja), S RODRÍGUEZ‐TECEDOR, S Rodríguez-Tecedor (Universidad de La Rioja)
Año2011
Volumen53
Número6
Páginas1099-1118
Fecha de publicación2011-12-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaArchaeometry (JOURNAL)
Identificadores de la revistaISSN: 0003-813X • E-ISSN: 1475-4754
EditorialWiley (PUBLISHER • GB)
DOI10.1111/j.1475-4754.2011.00587.x
OpenAlexW2112407518
IdiomaEN
Citas recibidas1
Referencias citadas13

The present study shows how multivariate analysis and variable selection techniques can be used in archaeological provenances studies to improve classification performances. Neutron activation analysis (NAA), in combination with stepwise linear discrimination analysis (SLDA) (capable of simultaneously performing variable selection and classification), was applied to differentiate among limestone samples from different quarries across the north of France based on their compositional fingerprint. A hierarchical classification approach was followed, aimed at progressively assigning limestone samples to more specific sources of origin, from the broadest classification units (French regions) to the narrowest ones (individual quarries). The application of the stepwise variable selection procedure to extract the most discriminating compositional variables prior to each classification development allowed us to obtain a perfect separation between the limestone categories considered at every classification stage (all samples were correctly classified and predicted in all cases). The high‐quality results obtained were even more remarkable considering the relatively small number of significant variables selected in each case using the SLDA method. An illustrative example was provided in order to demonstrate that the classification strategy proposed can actually allocate an unknown sculpture to a particular quarry of origin

Feature selection · Multivariate statistics · Ordination · Pattern recognition (psychology) · Provenance · Selection (genetic algorithm) · Statistics · Variable (mathematics) · Artificial Intelligence · Building materials and conservation · Computer Science · Cultural Heritage Materials Analysis · Geology · Mathematics · Nuclear Physics and Applications · Paleontology

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  • Archaeological Chemistry

    A M Pollard, Carl Heron et al.•Archaeological Chemistry•2008

  • A Review of Supervised and Unsupervised Pattern Recognition in Archaeometry

    Open Access•M J Baxter•Archaeometry•2006

  • Scientific Analysis in Archaeology and Its Interpretation

    David Killick, J Henderson•Journal of Field Archaeology•1992

  • Elemental Characterization of Medieval Limestone Sculpture from Parisian and Burgundian Sources

    Lore L Holmes, Charles T Little et al.•Journal of Field Archaeology•1986

  • Application of Multivariate Techniques to Analytical Data on Aegean Ceramics

    Open Access•Alan M Bieber, D W BROOKS et al.•Archaeometry•1976

Obras citantes distintas1
Citas por año0,5
Intervalo de citas2024 - 2024 (1)
Velocidad de citaciónrecent
Altamente citadoNo
Tipos de citaNeutras: 1
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