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Connectionist models of artificial grammar learning: what type of knowledge is acquired?

机译:人工语法学习的连接主义模型:获取哪种类型的知识?

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摘要

Two experiments are presented that test the predictions of two associative learning models of Artificial Grammar Learning. The two models are the simple recurrent network (SRN) and the competitive chunking (CC) model. The two experiments investigate acquisition of different types of knowledge in this task: knowledge of frequency and novelty of stimulus fragments (Experiment 1) and knowledge of letter positions, of small fragments, and of large fragments up to entire strings (Experiment 2). The results show that participants acquired all types of knowledge. Simulation studies demonstrate that the CC model explains the acquisition of all types of fragment knowledge but fails to account for the acquisition of positional knowledge. The SRN model, by contrast, accounts for the entire pattern of results found in the two experiments.
机译:提出了两个实验来测试两种人工语法学习的联想学习模型的预测。这两个模型是简单循环网络(SRN)和竞争分块(CC)模型。这两个实验研究了此任务中不同类型知识的获取:刺激片段的频率和新颖性的知识(实验1)以及字母位置,小片段和直至整个弦的大片段的知识(实验2)。结果表明,参与者获得了所有类型的知识。仿真研究表明,CC模型可以解释所有片段知识的获取,但不能解释位置知识的获取。相比之下,SRN模型说明了两个实验中发现的整个结果模式。

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