The Bayesian Evaluation of Categorization Models: Comment on Wills and Pothos (2012)

被引:5
作者
Vanpaemel, Wolf [1 ]
Lee, Michael D. [2 ]
机构
[1] Univ Louvain, Fac Psychol & Educ Sci, B-3000 Louvain, Belgium
[2] Univ Calif Irvine, Dept Cognit Sci, Irvine, CA 92717 USA
关键词
model evaluation; Bayesian statistics; categorization models; OPTIMAL EXPERIMENTAL-DESIGN; STATISTICAL-INFERENCE; SELECTIVE ATTENTION; EXEMPLAR; CLASSIFICATION; REPRESENTATION; DISTRIBUTIONS; PROBABILITY; ABSTRACTION; COGNITION;
D O I
10.1037/a0028551
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
Wills and Pothos (2012) reviewed approaches to evaluating formal models of categorization, raising a series of worthwhile issues, challenges, and goals. Unfortunately, in discussing these issues and proposing solutions. Wills and Pothos (2012) did not consider Bayesian methods in and detail. This means not only that their review excludes a major body of current work in the field, but also that it does not consider the body of work that provides the best current answers to the issues raised. In this comment, we argue that Bayesian methods can be-and, in most cases, already have been-applied to all the major model evaluation issues raised by Wills and Pothos (2012). In particular, Bayesian methods can address the challenges of avoiding overfitting, considering qualitative properties of data, reducing dependence on free parameters, and testing empirical breadth.
引用
收藏
页码:1253 / 1258
页数:6
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