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A Comparison of Rule-Based versus Exemplar-Based Categorization Using the ACT-R Architecture

机译:基于规则的基于范例的基于范例的分类的比较

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摘要

A rule-based approach to categorization is compared with an exemplar-based approach. Both models were developed using the ACT-R architecture. Both approaches yield similar accuracy and are relatively impervious to varying model parameters. Implications for the nature of implicit and explicit knowledge and learning are discussed.
机译:将基于规则的分类方法与基于示例的方法进行了比较。两种模型都是使用ACT-R架构开发的。两种方法都产生类似的准确性,并且与不同的模型参数相对不透明。讨论了对隐含和明确知识和学习的性质的影响。

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