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Category labels versus feature labels: Category labels polarize inferential predictions

机译:类别标签与功能标签:类别标签会推论推理预测

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摘要

What makes category labels different from feature labels in predictive inference? This study suggests that category labels tend to make inductive reasoning polarized and homogeneous. In two experiments, participants were shown two schematic pictures of insects side by side and predicted the value of a hidden feature of one insect on the basis of the other insect. Arbitrary verbal labels were shown above the two pictures, and the meanings of the labels were manipulated in the instructions. In one condition, the labels represented the category membership of the insects, and in the other conditions, the same labels represented attributes of the insects. When the labels represented category membership, participants' responses became substantially polarized and homogeneous, indicating that the mere reference to category membership can modify reasoning processes.
机译:是什么使类别标签与特征标签在预测推理中有所不同?这项研究表明类别标签倾向于使归纳推理变得两极化和同质化。在两个实验中,参与者并排显示了两只昆虫的示意图,并根据另一只昆虫预测了一只昆虫的隐藏特征的值。在两张图片上方显示了任意的语言标签,并且在说明中操纵了标签的含义。在一种情况下,标签表示昆虫的类别成员,而在其他情况下,相同的标签表示昆虫的属性。当标签代表类别成员资格时,参与者的回答就变得两极分化和同质化,表明仅提及类别成员资格就可以修改推理过程。

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