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Applying Data Mining Methods for the Analysis of Stable Isotope Data in Bioarchaeology

  • Markus Mauder
  • , Eirini Ntoutsi
  • , Peer Kröger
  • , Christoph Mayr
  • , Gisela Grupe
  • , Anita Toncala
  • , Stefan Hölzl

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Abstract

Data science methods have the potential to benefit other scientific fields by shedding new light on common questions. One such task is choosing good features for analysis. In this paper, we introduce a data science framework that was designed to allow domain experts to consider their domain knowledge in assembling suitable data sources for complex analyses. The structure of experimental data as represented by a clustering is used to measure the relevance as well as the redundancy of each feature. We present an application of this technique to bioarchaelogical data from a region in the European Alps, a transalpine passage of eminent archaeological importance in European prehistory, the Inn-Eisack-Adige passage, spanning Italy, Austria, and Germany. These results are applied to the task of provenance analysis. The application of the presented data mining technique leads to new insights which were not found using standard bioarchaeological approaches.

OriginalspracheEnglisch
Titel des Sammelwerks2016 IEEE 12th International Conference on e-Science (e-Science)
Herausgeber (Verlag)Institute of Electrical and Electronics Engineers Inc.
Seiten233-242
Seitenumfang10
ISBN (elektronisch)9781509042739
ISBN (Print)9781509042746, 9781509042722
DOIs
PublikationsstatusVeröffentlicht - 6 März 2017
Veranstaltung12th IEEE International Conference on e-Science, e-Science 2016 - Baltimore, USA / Vereinigte Staaten
Dauer: 23 Okt. 201627 Okt. 2016

Konferenz

Konferenz12th IEEE International Conference on e-Science, e-Science 2016
Land/GebietUSA / Vereinigte Staaten
OrtBaltimore
Zeitraum23 Okt. 201627 Okt. 2016

ASJC Scopus Sachgebiete

  • Computernetzwerke und -kommunikation
  • Information systems
  • Umweltwissenschaften (sonstige)
  • Medizin (sonstige)
  • Sozialwissenschaften (sonstige)
  • Agrar- und Biowissenschaften (sonstige)
  • Angewandte Informatik

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