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Measuring category intuitiveness in unconstrained categorization tasks

机译:在不受限制的分类任务中测量类别的直观性

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What makes a category seem natural or intuitive? In this paper, an unsupervised categorization task was employed to examine observer agreement concerning the categorization of nine different stimulus sets. The stimulus sets were designed to capture different intuitions about classification structure. The main empirical index of category intuitiveness was the frequency of the preferred classification, for different stimulus sets. With 169 participants, and a within participants design, with some stimulus sets the most frequent classification was produced over 50 times and with others not more than two or three times. The main empirical finding was that cluster tightness was more important in determining category intuitiveness, than cluster separation. The results were considered in relation to the following models of unsupervised categorization: DIVA, the rational model, the simplicity model, SUSTAIN, an Unsupervised version of the Generalized Context Model (UGCM), and a simple geometric model based on similarity. DIVA, the geometric approach, SUSTAIN, and the UGCM provided good, though not perfect, fits. Overall, the present work highlights several theoretical and practical issues regarding unsupervised categorization and reveals weaknesses in some of the corresponding formal models.
机译:是什么使类别显得自然或直观?在本文中,采用了无监督分类任务来检查关于9种不同刺激集分类的观察者一致性。刺激集旨在捕获关于分类结构的不同直觉。类别直观性的主要经验指标是针对不同刺激集的偏好分类的频率。共有169名参与者,并且采用内部参与者设计,其中包含一些刺激因素集,最频繁的分类产生了50次以上,而其他类别则不超过2到3次。主要的经验发现是,在确定类别的直观性方面,聚类紧密度比聚类分离更重要。考虑以下非监督分类模型的结果:DIVA,有理模型,简单模型,SUSTAIN,广义上下文模型(UGCM)的无监督版本以及基于相似性的简单几何模型。 DIVA,几何方法,SUSTAIN和UGCM提供了很好的配合,尽管并不完美。总体而言,本工作重点介绍了有关无监督分类的一些理论和实践问题,并揭示了某些相应形式模型中的弱点。

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