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首页> 外文期刊>Journal of experimental psychology. Learning, memory, and cognition >Exemplars, Prototypes, and the Flexibility of Classification Models
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Exemplars, Prototypes, and the Flexibility of Classification Models

机译:示例性,原型和分类模型的灵活性

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摘要

J. P. Minda and J. D. Smith (2001) showed that a prototype model outperforms an exemplar model, especially in larger categories or categories that contained more complex stimuli. R. M. Nosofsky and S. R. Zaki (2002) showed that an exemplar model with a response-scaling mechanism outperforms a prototype model. The authors of the current study investigated whether excessive model flexibility could explain these results. Using cross-validation, the authors demonstrated that both the prototype model and the exemplar model with a response-scaling mechanism suffered from overfitting in the linearly separable category structure. The results illustrate the need to make sure that the best-fitting model is not chasing error variance instead of variance attributed to the cognitive process it is supposed to model.
机译:J.P. Minda和J.D.Smith(2001)表明,原型模型优于一个示例模型,尤其是包含更复杂刺激的较大类别或类别。 R. M. Nosofsky和S. Zaki(2002)表明,具有响应缩放机制的示例模型优于原型模型。 目前研究的作者调查了过度的模型灵活性可以解释这些结果。 使用交叉验证,作者展示了原型模型和具有响应缩放机制的示例性模型,遭受线性可分离类别结构的过度拟合。 结果说明了需要确保最佳拟合模型不是追逐误差方差而不是归因于认知过程所支持的认知过程。

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