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A new self-learning computational method for footprints of early human migration processes

机译:一种新的早期人体迁移过程占地面积的新自学习计算方法

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We present a new self-learning computational method searching for footprints of early migration processes determining the genetic compositions of recent human populations. The data being analysed are 26- and 18-dimensional mitochondrial and Y-chromosomal haplogroup distributions representing 50 recent and 34 ancient populations in Eurasia and America. The algorithms search for associations of haplogroups jointly propagating in a significant subset of these populations. Joint propagations of Hgs are detected directly by similar ranking lists of populations derived from Hg frequencies of the 50 Hg distributions. The method provides us the most characteristic associations of mitochondrial and Y-chromosomal haplogroups, and the set of populations where these associations propagate jointly. In addition, the typical ranking lists characterizing these Hg associations show the geographical distribution, the probable place of origin and the paths of their protection. Comparison to ancient data verifies that these recent geographical distributions refer to the most important prehistoric migrations supported by archaeological evidences.
机译:我们提出了一种新的自学习计算方法,寻找早期迁移过程的占地面积,确定最近人群的遗传组成。正在分析的数据是代表欧亚和美国最近和34个古代人群的26%和18维线粒体和Y-染色体HAPLOGroup分布。该算法搜索Haplogroups在这些群体的大量子集中共同传播的关联。通过类似于50个HG分布的HG频率的群体的类似排名列表直接检测HGS的关节繁殖。该方法为我们提供了线粒体和y-染色体Haplogroups的最具特征性关联,以及这些关联共同传播的一组群体。此外,表征这些HG关联的典型排名列表显示了地理分布,可能的原产地和保护路径。与古代数据的比较验证了这些最近的地理分布是指考古证据支持的最重要的史前迁移。

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