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Modeling the evolution of communication: from stimulus associations to grounded symbolic associations

机译:建模通信演变:从刺激关联到接地象征协会

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This paper describes a model for the evolution of communication systems using simple syntactic rules, such as word combinations. It also focuses on the distinction between simple word-object association and symbolic relationships. The simulation method combines the use of neural networks and genetic algorithms. The behavioral task is influenced by Savage-Rumbanugh & Rumbanugh's (1987) ape language experiments. The results show that languages that use compination of words (e.g. "verb-object" rule) can emerge by autoorganization and cultural transmission. Neural networks are tesed to see if evolved languages are based on symbol acquisition. The implications of this model for Deacon's (1997) hypothesis on the role of symbolic acquisition for the origin of language are discussed.
机译:本文介绍了一种使用简单句法规则的通信系统演化的模型,例如单词组合。它还专注于简单词对象关联和象征关系之间的区别。仿真方法结合了神经网络和遗传算法的使用。行为任务受野蛮 - Rumbanugh&Rumbanugh(1987)的语言实验影响。结果表明,可以通过自动化和文化传输出现使用单词(例如“动词对象”规则)的竞争的语言。 TEESED以了解神经网络以查看是否基于符号采集。讨论了该模型对Deacon(1997)对语言起源的作用作用的假设的影响。

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