祖先谱软件在巴西鉴定样本祖先估计中的准确性分析

L. C. Fernandes, M. Bento, P. M. Rabello, E. Soriano, D. Navega, E. Júnior, E. Cunha
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引用次数: 5

摘要

在目前的研究中,一个用于颅测量祖先估计的软件工具,在一个已知自我报告祖先的巴西骨骼样本中进行了评估。从每个头骨中获得23个颅测量值,并使用祖先树软件进行分析,采用两种分类策略-锦标赛森林和祖先森林算法。锦标赛森林算法(53.54%)和3个祖先群的ancestralForest算法(50.96%)对欧洲人的分类更准确,而6个祖先群(50.00%)和2个祖先群(67.64%)的ancestralForest算法对非洲人祖先的估计更准确。混合血统的标本主要被归类为欧洲血统。使用仅考虑欧洲和非洲血统(58.42%)的ancestralForest算法是对巴西头骨祖先估计最准确的设置。监督分类算法和工具(如祖宗树)的工作基于数据分析和模式匹配,而其数据库中没有巴西样本,该软件显示巴西样本的准确性较低。将从巴西颅骨获得的具有代表性的颅测量数据纳入软件数据库可能会显著提高祖先估计的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the Accuracy of AncesTrees Software in Ancestry Estimation in Brazilian Identified Sample
In the present study a software tool for craniometric ancestry estimation, AncesTrees, was evaluated in an identified Brazilian skeletal sample with known self-reported ancestry. Twenty-three craniometric measures were obtained from each skull and analyzed using AncesTrees software, with two classification strategies—tournamentForest and ancestralForest algorithm. The tournamentForest (53.54%) and ancestralForest algorithms with three ancestry groups (50.96%) were more accurate to classify Europeans, while the ancestralForest algorithm with six (50.00%) and two (67.64%) groups were more accurate to estimate the ancestry of African descents. Admixed ancestry specimens were classified predominantly as European descent. The use of the ancestralForest algorithm considering only European and African origin (58.42%) was the most accurate setup for ancestry estimation in Brazilian skulls. Supervised classification algorithms and tools such as the AncesTrees work based on data analysis and pattern matching, and there is no Brazilian sample in its database, the software showed a low accuracy Brazilian samples. The incorporation of representative craniometric data obtained from Brazilian skulls into the software database may significantly increase the accuracy of ancestry estimates.
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