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首页> 外文期刊>American Journal of Physical Anthropology >A method of sexing the human os coxae based on logistic regressions and Bruzek's nonmetric traits
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A method of sexing the human os coxae based on logistic regressions and Bruzek's nonmetric traits

机译:一种基于逻辑回归和布鲁布克的非化性特征性行为人类os Coxae的方法

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Objectives: This study aims at proposing a visual method for sexing the human os coxae based on a statistical approach, using a scoring system of traits described by Bruzek (2002). This method is evaluated on a meta-population sample, where the data were acquired by direct observation of dry bones as well as computed tomography (CT) scans. A comparison with the original Bruzek's (2002) method is performed. Materials and methods: Five hundred and ninety two ossa coxae of modern humans are included in the reference dataset. Two other samples, composed respectively of 518 ossa coxae and 99 CT-scan images, are both used for validation purposes. The individuals come from five European or North American population samples. Eleven trichotomic traits (expressing female, male, or intermediate forms) were observed on each os coxae. The new approach employs statistical processing based on logistic regressions. An R package freely available online, PELVIS, implements both methods. Results: Both methods provide highly reliable sex estimates. The new statistical method has a slightly better accuracy rate (99.2%) than the former method (98.2%) but has also a higher rate of indeterminate individuals (12.9% vs. 3% for complete bones). Conclusion: The efficiency of both methods is compared. Low error rates were preferred over high ability of reaching the classification threshold. The impact of lateralization and the asymmetry of observed traits are discussed. Finally, it is shown that this visual method of sex estimation is reliable and easy to use through the graphical user interface of the R package.
机译:目的:本研究旨在使用Bruzek(2002)描述的特征的评分系统,提出基于统计方法对人类OS Coxae进行性行为的可视化方法。该方法在Meta群体样本上进行评估,其中通过直接观察干骨以及计算断层扫描(CT)扫描来获取数据。执行与原始BRUEZEK(2002)方法的比较。材料和方法:参考数据集中的现代人类的五百九十二个OSSA Coxae。另外两个样品分别组成518个OSSA Coxae和99 CT扫描图像,都用于验证目的。个人来自五个欧洲或北美人口样本。在每个OS Coxae上观察到11种三分形状的特征(表达雌性,雄性或中间形式)。新方法采用基于逻辑回归的统计处理。 A R包免费提供在线,骨盆,实现这两种方法。结果:两种方法都提供高度可靠的性别估计。新的统计方法比以前的方法(98.2%)具有略微更好的准确率(99.2%),但也具有更高的不确定个体率(12.9%与完整骨骼的3%)。结论:两种方法的效率比较。在达到分类阈值的高能力方面优先于误差率低。讨论了观察性特征的横向化和不对称的影响。最后,显示这种性爱估计的视觉方法可靠且易于使用R包的图形用户界面。

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