Non-destructive characterisation and classification of ceramic artefacts using pEDXRF and statistical pattern recognition

Springer Science and Business Media LLC - Tập 6 - Trang 1-9 - 2012
Maja D Gajić-Kvaščev1, Milica D Marić-Stojanović2, Radmila M Jančić-Heinemann3, Goran S Kvaščev4, Velibor Dj Andrić1
1Vinča Institute of Nuclear Sciences, University of Belgrade, Belgrade, Serbia
2National Museum Belgrade, Belgrade, Serbia
3Faculty of Technology and Metallurgy, University of Belgrade, Belgrade, Serbia
4Faculty of Electrical Engineering, University of Belgrade, Belgrade, Serbia

Tóm tắt

Portable energy dispersive X-ray fluorescence (pEDXRF) spectrometry analysis was applied for the characterisation of archaeological ceramic findings from three Neolithic sites in Serbia. Two dimension reduction techniques, principal component analysis (PCA) and scattering matrices-based dimension reduction were used to examine the possible classification of those findings, and to extract the most discriminant features. A decision-making procedure is proposed, whose goal is to classify unknown ceramic findings based on their elemental compositions derived by pEDXRF spectrometry. As a major part of decision-making procedure, the possibilities of two dimension reduction methods were tested. Scattering matrices-based dimension reduction was found to be the more efficient method for the purpose. Linear classifiers designed based on the desired output allowed for 7 of 8 unknown samples from the test set to be correctly classified. Based on the results, the conclusion is that despite the constraints typical of the applied analytical technique, the elemental composition can be considered as viable information in provenience studies. With a fully-developed procedure, ceramic artefacts can be classified based on their elemental composition and well-known provenance.

Tài liệu tham khảo

Tite MS: Ceramic production, provenance and use—a review. Archaeometry. 2008, 50: 216-231. 10.1111/j.1475-4754.2008.00391.x. Montana G, Ontiveros MAC, Polito AM, Azzaro E: Characterisation of clayey raw materials for ceramic manufacture in ancient Sicily. Appl. Clay Sci. 2011, 53: 476-488. 10.1016/j.clay.2010.09.005. Papachristodoulou C, Gravani K, Oikonomou A, Ioannides K: On the provenance and manufacture of red-slipped fine ware from ancient Cassope (NW Greece): evidence by X-ray analytical methods. J Archaeol Sci. 2010, 37: 2146-2154. 10.1016/j.jas.2010.02.013. Freitas PR, Calza C, Lima AT, Rabello A, Lopes TR: EDXRF and multivariate statistical analysis of fragments from Marajoara ceramics. X-Ray Spectrom. 2010, 39: 307-310. 10.1002/xrs.1200. Frankel D, Webb JM: Pottery production and distribution in prehistoric Bronze Age Cyprus. An application of pXRF analysis. J Archaeol Sci. 2012, 39: 1380-1387. 10.1016/j.jas.2011.12.032. Xu A, Wang C, Chi J, Li M, Zhang M, Holmes L, Harbottle G, Koshimizu S, Manabu K, Koichi K: Preliminary Provenance Research on Chinese Neolithic Pottery: Huating (Xinyi County) and Three Yellow River Valley Sites. Archaeometry. 2001, 43: 35-47. 10.1111/1475-4754.00003. Taylor RJ, Robinson VJ, Gibbins DJL: An investigation of the provenance of the Roman Amphora cargo from the Plemmirio B shipwreck. Archaeometry. 1997, 39: 9-21. 10.1111/j.1475-4754.1997.tb00787.x. Vaughn KJ, Dussubieux L, Williams PR: A pilot compositional analysis of Nasca ceramics from the Kroeber collection. J Archaeol Sci. 2011, 38: 3560-3567. 10.1016/j.jas.2011.08.025. Hall M, Minyae S: Chemical Analysis of Xiong-nu Pottery: A Preliminary Study of Exchange and Trade on the Inner Asian Steppes. J Archaeol Sci. 2002, 2: 135-144. Kuleff I, Iliev I, Pernicka E, Gergova D: Chemical and lead isotope compositions of lead artefacts from ancient Thracia (Bulgaria). J Cult Herit. 2006, 7: 244-256. 10.1016/j.culher.2006.04.003. Sánchez S, Bosch F, Gimeno JV, Yusá DJ, Doménech A: Study and dating of medieval ceramic tiles by analysis of enamels with atomic absorption spectroscopy, X-ray fluorescence and electron probe microanalysis. Spectrochim. Acta, Part B. 2002, 57: 689-700. 10.1016/S0584-8547(01)00395-0. Pizarro C, Perez-del-Notario N, Saenz-Gonzalez C, Rodriguez-Tecedor S, Gonzalez Saiz JM: Matching past and present ceramic production in the Banda area (Ghana): improving the analytical performance of neutron activation analysis in archaeology using multivariate analysis techniques. Archaeometry. 2012, 54: 101-113. 10.1111/j.1475-4754.2011.00601.x. Tsolakidou A, Kilikoglou V: Comparative analysis of ancient ceramics by neutron activation analysis, inductively coupled plasma-optical-emission spectrometry, inductively coupled plasma-mass spectrometry, and X-ray fluorescence. Anal Bioanal Chem. 2002, 374: 566-572. 10.1007/s00216-002-1444-2. Padilla R, Van Espen P, Godo Torres PP: The suitability of XRF analysis for compositional classification of archaeological ceramic fabric: A comparison with a previous NAA study. Anal Chim Acta. 2006, 558: 283-289. 10.1016/j.aca.2005.10.077. Cariati F, Fermo P, Gilardoni S, Galli A, Milazzo M: A new approach for archaeological ceramics analysis using total reflection X-ray fluorescence spectrometry. Spectrochim Acta, Part B. 2003, 58: 177-184. 10.1016/S0584-8547(02)00253-7. Glascock MD, Neff H: Neutron activation analysis and provenance research in archaeology. Meas Sci Technol. 2003, 14: 1516-1526. 10.1088/0957-0233/14/9/304. Baxter MJ: A Review of Supervised and Unsupervised Pattern Recognition in Archaeometry. Archaeometry. 2006, 48: 671-694. 10.1111/j.1475-4754.2006.00280.x. Remolá JA, Larrechi MS, Rius FX: Chemometric characterization of 5th century A.D. amphora producing centres in the Mediterranean. Talanta. 1993, 40: 1749-1751. 10.1016/0039-9140(93)80093-7. Fermo P, Delnevo E, Lasagni M, Polla S, de Vos M: Application of chemical and chemometric analytical techniques to the study of ancient ceramics from Dougga (Tunisia). Microchem J. 2008, 88: 150-159. 10.1016/j.microc.2007.11.012. Carrero JA, Goienaga N, Fdez-Ortiz De Vallejuelo S, Arana G, Madariaga JM: Classification of archaeological pieces into their respective stratum by a chemometric model based on the soil concentration of 25 selected elements. Spectrochim. Acta, Part B. 2010, 65: 279-286. 10.1016/j.sab.2010.01.009. Raman spectroscopy in archaeology and art history. Edited by: Edwards HGM, Chalmers JM. 2005, Cambridge: The Royal Society of Chemistry Akyuz S, Akyuz T, Basaran S, Bolcal C, Gulec A: Analysis of ancient potteries using FT-IR, micro-Raman and EDXRF spectrometry. Vib Spectrosc. 2008, 48: 276-280. 10.1016/j.vibspec.2008.02.011. Centeno SA, Williams VI, Little NC, Speakman RJ: Characterization of surface decorations in Prehispanic archaeological ceramics by Raman spectroscopy, FTIR, XRD and XRF. Vib Spectrosc. 2012, 58: 119-124. Smith GD, Clark RJH: Raman microscopy in archaeological science. J Archaeol Sci. 2004, 31: 1137-1160. 10.1016/j.jas.2004.02.008. Kos M, Šmit Ž: PIXE-PIGE analysis of 18th and early 19th century creamware from Slovenia and Northern Italy. J Cult Herit. 2011, 12: 236-242. 10.1016/j.culher.2010.12.010. Clark RJH: Raman microscopy as a structural and analytical tool in the fields of art and archaeology. J Mol Struct. 2007, 834–836: 74-80. Speakman RJ, Little NC, Creel D, Miller MR, Iñañez JG: Sourcing ceramics with portable XRF spectrometers? A comparison with INAA using Mimbres pottery from the American Southwest. J Archaeol Sci. 2011, 38: 3483-3496. 10.1016/j.jas.2011.08.011. Guoxi X, Songlin F, Xiangqian F, Yongqiang L, Hongye H, Yanqing W, Jihao Z, Lingtong Y, Li L: The Dating of Ancient Chinese Celadon by INAA and Pattern Recognition Methods. Archaeometry. 2009, 51: 682-699. 10.1111/j.1475-4754.2008.00436.x. Gajić-Kvaščev M, Marić-Stojanović M, Šmit Ž, Kantarelou V, Karydas AG, Šljivar D, Milovanović D, Andrić V: New evidence for the use of cinnabar as a colouring pigment in the Vinča culture. J Archaeol Sci. 2011, 39: 1025-1033. Vuković J: Neolithic Pottery: Technological and Social Aspects. PhD Thesis, Belgra. 2010, University of Belgrade: Faculty of Philosophy, in Serbian Stojić M, Jocić M, Vasić M, Pešić D, Vasić A: Niš-Kulturna stratigrafija praistorijskih lokaliteta u Niškoj regiji. (Niš-Cultural Stratigraphy of Prehistoric Sites in the Niš Region). 2006, Belgrade, Niš, Institute of Archaeology: National Museum, 77-87. in Serbian Hein A, Kilikoglou V: ceraDAT—Prototype of a Web-based Relational Database for Archaeological Ceramics*. Archaeometry. 2012, 54: 230-243. 10.1111/j.1475-4754.2011.00618.x. Forster N, Grave P, Vickery N, Kealhofer L: Non-destructive analysis using PXRF: methodology and application to archaeological ceramics. X-Ray Spectrom. 2011, 40: 389-398. 10.1002/xrs.1360. Bakraji EH, Itlas M, Abdulrahman A, Issa H, Abboud R: X-ray fluorescence analysis for the study of fragments pottery excavated at Tell Jendares site, Syria, employing multivariate statistical analysis. J Radioanal Nucl Chem. 2010, 285: 455-460. 10.1007/s10967-010-0595-4. Fukunaga K: Introduction to Statistical Pattern Recognition. 1990, Orlando: Academic, 2 Stepanic P, Latinovic I, Djurovic Z: A new approach to detection of defects in rolling element bearings based on statistical pattern recognition. Int J Adv Manuf Techno. 2009, 45: 91-100. 10.1007/s00170-009-1953-7. Alfeld M, Janssens K, Dik J, de Nolf W, van der Snickt G: Optimization of mobile scanning macro-XRF systems for the in situ investigation of historical paintings. J Anal At Spectrom. 2011, 26: 899-909. 10.1039/c0ja00257g. Stricevic R, Djurovic N, Djurovic Z: Drought classification in Northern Serbia based on SPI and statistical pattern recognition. Meteorol Appl. 2011, 18: 60-69. 10.1002/met.207. Brereton RG: Chemometrics Data Analysis for the Laboratory and Chemical Plant. 2003, Chichester West Sussex: John Wiley & Sons Ltd Duda RO, Hart PE, Stork DG: Pattern Classification. 2000, Wiley: New York, 2 Varmuza K, Filzmoser P: Introduction to Multivariate Statistical Analysis in Chemometrics. 2000, Boca Raton FL: CRC Press Theodoridis S, Koutroumbas K: Pattern recognition. 2003, Academic Press: San Diego, 2