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A Bayesian phylogenetic approach to estimating the stability of linguistic features and the genetic biasing of tone

机译:贝叶斯系统发育方法估计语言特征的稳定性和音调的遗传偏向

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摘要

Language is a hallmark of our species and understanding linguistic diversity is an area of major interest. Genetic factors influencing the cultural transmission of language provide a powerful and elegant explanation for aspects of the present day linguistic diversity and a window into the emergence and evolution of language. In particular, it has recently been proposed that linguistic tone—the usage of voice pitch to convey lexical and grammatical meaning—is biased by two genes involved in brain growth and development, ASPM and Microcephalin. This hypothesis predicts that tone is a stable characteristic of language because of its ‘genetic anchoring’. The present paper tests this prediction using a Bayesian phylogenetic framework applied to a large set of linguistic features and language families, using multiple software implementations, data codings, stability estimations, linguistic classifications and outgroup choices. The results of these different methods and datasets show a large agreement, suggesting that this approach produces reliable estimates of the stability of linguistic data. Moreover, linguistic tone is found to be stable across methods and datasets, providing suggestive support for the hypothesis of genetic influences on its distribution.
机译:语言是我们这个物种的标志,理解语言多样性是一个重要的领域。影响语言文化传播的遗传因素为当今语言多样性的各个方面提供了有力而优雅的解释,并为了解语言的出现和发展提供了一个窗口。特别是,最近有人提出,语言语调(使用语音音调传达词汇和语法意义)受到涉及大脑生长和发育的两个基因ASPM和Microcephalin的偏见。该假设预测,由于语气的“遗传定位”,语气是语言的稳定特征。本论文使用贝叶斯系统进化框架,通过多种软件实现,数据编码,稳定性估计,语言分类和外联选择,将贝叶斯系统进化框架应用于一大套语言特征和语言家族,对这一预测进行测试。这些不同方法和数据集的结果显示出很大的一致性,这表明该方法可对语言数据的稳定性产生可靠的估计。此外,发现语言语调在各种方法和数据集中都是稳定的,这为遗传影响其分布的假设提供了暗示性支持。

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