同位素分析用于古代材料的来源:方法的比较
Sarah De Ceuster1, Dimitra Machaira2, Patrick Degryse1,2
1KU Leuven, Earth and Environmental Sciences Celestijnenlaan 200E 3001 Leuven Belgium patrick.degryse@kuleuven.be.
RSC advances
|June 30, 2023
概括
同位素分析显示,罗马银币起源于西班牙,北北欧和爱琴海. 核密度估计提供了一个统计学上可靠的方法来确定来源,超越大型数据集的传统双图.
科学领域:
- 考古测量考古测量方法
- 地质化学 地质化学
- 材料科学 材料科学 材料科学
背景情况:
- 同位素分析是一种长期以来的技术,用于确定,银和铜等金属的来源.
- 对于同位素比例存在各种解释方法,需要进行比较研究以获得最佳应用.
研究的目的:
- 为了比较三种不同的方法,将考古文物中的同位素标记与其潜在的矿物来源联系起来.
- 评估每种方法的优点和弱点,当应用到罗马共和国银币数据集时.
主要方法:
- 传统的双图分析.
- 聚类与模型年龄计算相结合 (Albarède等人, 2020).
- 使用核密度估计的相对概率计算 (De Ceuster和Degryse, 2020).
主要成果:
- 这三种方法都确定了西班牙,北北欧和爱琴海是分析罗马硬币的主要银源.
- 在所有方法中都观察到金属混合和回收的证据.
- 对于大型数据集,核密度估计被证明更为透明,并且在统计学上更合理.
- 阿尔巴雷德和其他人. 这种方法提供了地质洞察力,但缺乏作为独立方法的解决方案.
结论:
- 对于大规模的同位素数据集,传统的双图法正在变得过时.
- 推核密度估计,因为它的统计学严谨性和清楚地呈现出源概率.
- 聚类和模型年龄方法需要改进,特别是其聚类组件,以提高考古学相关性和分辨率.
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