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实验室中演化的手势运动学的系统研究。

A Systematic Investigation of Gesture Kinematics in Evolving Manual Languages in the Lab.

机构信息

Donders Institute for Brain, Cognition and Behaviour, Radboud University Nijmegen.

Max Planck Institute for Psycholinguistics, Radboud University Nijmegen.

出版信息

Cogn Sci. 2021 Jul;45(7):e13014. doi: 10.1111/cogs.13014.

Abstract

Silent gestures consist of complex multi-articulatory movements but are now primarily studied through categorical coding of the referential gesture content. The relation of categorical linguistic content with continuous kinematics is therefore poorly understood. Here, we reanalyzed the video data from a gestural evolution experiment (Motamedi, Schouwstra, Smith, Culbertson, & Kirby, 2019), which showed increases in the systematicity of gesture content over time. We applied computer vision techniques to quantify the kinematics of the original data. Our kinematic analyses demonstrated that gestures become more efficient and less complex in their kinematics over generations of learners. We further detect the systematicity of gesture form on the level of thegesture kinematic interrelations, which directly scales with the systematicity obtained on semantic coding of the gestures. Thus, from continuous kinematics alone, we can tap into linguistic aspects that were previously only approachable through categorical coding of meaning. Finally, going beyond issues of systematicity, we show how unique gesture kinematic dialects emerged over generations as isolated chains of participants gradually diverged over iterations from other chains. We, thereby, conclude that gestures can come to embody the linguistic system at the level of interrelationships between communicative tokens, which should calibrate our theories about form and linguistic content.

摘要

无声手势由复杂的多关节运动组成,但现在主要通过对指涉手势内容进行分类编码来研究。因此,类别语言内容与连续运动学之间的关系还不太清楚。在这里,我们重新分析了来自手势演变实验(Motamedi、Schouwstra、Smith、Culbertson 和 Kirby,2019)的视频数据,该实验表明手势内容的系统性随时间推移而增加。我们应用计算机视觉技术来量化原始数据的运动学。我们的运动学分析表明,随着学习者的世代更替,手势在运动学上变得更高效且不那么复杂。我们进一步检测手势形式的系统性,这是在手势运动学相互关系的层面上进行的,它与对手势进行语义编码获得的系统性直接相关。因此,仅从连续运动学本身,我们就可以深入了解以前只能通过对意义进行分类编码才能了解的语言方面。最后,我们超越了系统性的问题,展示了随着世代的推移,独特的手势运动学方言如何作为孤立的参与者链出现,这些参与者链在迭代中逐渐与其他链分离。因此,我们得出结论,手势可以在交际语符之间的相互关系层面上体现语言系统,这应该校准我们关于形式和语言内容的理论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6fef/8365719/b033fabf764f/COGS-45-e13014-g002.jpg

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