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Applying data mining methods for the analysis of stable isotope data in bioarchaeology

机译:应用数据挖掘方法分析生物考古学中的稳定同位素数据

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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.
机译:数据科学方法可以通过阐明常见问题来使其他科学领域受益。其中一项任务是选择良好的功能进行分析。在本文中,我们介绍了一个数据科学框架,该框架旨在让领域专家在组合合适的数据源以进行复杂分析时考虑其领域知识。以聚类表示的实验数据的结构用于测量每个特征的相关性和冗余度。我们介绍了该技术在欧洲阿尔卑斯山地区的生物考古数据中的应用,在欧洲史前的重要考古重要性的跨高山通道,横跨意大利,奥地利和德国的Inn-Eisack-Adige通道。这些结果适用于出处分析任务。所提出的数据挖掘技术的应用导致了新的见解,而这些见解是使用标准生物考古学方法所无法发现的。

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