Conceptual and Methodological Problems with Comparative Work on Artificial Language Learning

IF 0.6 0 LANGUAGE & LINGUISTICS
J. Watumull, M. Hauser, R. Berwick
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引用次数: 4

Abstract

Several theoretical proposals for the evolution of language have sparked a renewed search for comparative data on human and non-human animal computational capacities. However, conceptual confusions still hinder the field, leading to experimental evidence that fails to test for comparable human competences. Here we focus on two conceptual and methodological challenges that affect the field generally: 1) properly characterizing the computational features of the faculty of language in the narrow sense; 2) defining and probing for human language-like computations via artificial language learning experiments in non-human animals. Our intent is to be critical in the service of clarity, in what we agree is an important approach to understanding how language evolved.
人工语言学习比较研究中的概念和方法问题
关于语言进化的几个理论建议引发了对人类和非人类动物计算能力比较数据的新一轮研究。然而,概念上的混乱仍然阻碍了这一领域的发展,导致实验证据无法测试可比的人类能力。在这里,我们关注影响该领域的两个概念和方法挑战:1)在狭义上正确描述语言能力的计算特征;2)通过在非人类动物中进行人工语言学习实验,定义和探索类似人类语言的计算。我们的目的是在为清晰服务方面发挥关键作用,我们一致认为这是理解语言进化的重要途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biolinguistics
Biolinguistics LANGUAGE & LINGUISTICS-
CiteScore
1.50
自引率
0.00%
发文量
5
审稿时长
12 weeks
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