Five Ways In Which Computational Modeling Can Help Advance Cognitive Science: Lessons From Artificial Grammar Learning

TOPICS IN COGNITIVE SCIENCE(2020)

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摘要
There is a rich tradition of building computational models in cognitive science, but modeling, theoretical, and experimental research are not as tightly integrated as they could be. In this paper, we show that computational techniques-even simple ones that are straightforward to use-can greatly facilitate designing, implementing, and analyzing experiments, and generally help lift research to a new level. We focus on the domain of artificial grammar learning, and we give five concrete examples in this domain for (a) formalizing and clarifying theories, (b) generating stimuli, (c) visualization, (d) model selection, and (e) exploring the hypothesis space.
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关键词
Computational modeling, Neural networks, Formal grammars, Bayesian modeling, Artificial language learning, Artificial grammar learning
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