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The Application of Clustering Techniques to Group Archaeological Artifacts

机译:聚类技术在分组考古文物中的应用

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Modern methods of data analysis are rarely used in archaeology. Meanwhile, it is archaeology that opens up impressive opportunities for various interdisciplinary studies at the junction of archaeology, chemistry, physics and mathematics. XRF analysis, which has long been used to determine the qualitative and quantitative composition of discovered archaeological artifacts, among other things, provides arrays of digital information that can be used by machine learning methods for more accurate clustering or classification of artifacts. This is especially true for artifacts that are presented in the form of fragments of ancient ceramic amphorae or glass vessels. Such fragments, as arule, represent the mass of the fragments mixed among themselves. There is a need to divide them into groups and then restore them as a single artifact from the detected fragments of one group. This paper presents a comparative analysis of the application of different clustering methods to combine artifacts into groups with similar properties.
机译:在考古学中很少使用现代数据分析方法。同时,它是考古学,为考古,化学,物理学和数学交界处开辟了各种跨学科研究的令人印象深刻的机会。 XRF分析长期以来已经用于确定发现的考古工件的定性和定量组成,以及其他事项提供了可以由机器学习方法用于更准确的聚类或伪影分类的数字信息阵列。这对于以古代陶瓷油孔或玻璃容器片段形式提出的伪影尤其如此。这种片段作为树脂,代表了它们之间混合的片段的质量。需要将它们分成组,然后将它们恢复为来自一个组的检测到的片段的单个工件。本文介绍了不同聚类方法在具有相似性质的基团组合中的应用的比较分析。

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