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Collaboration facilitates abstract category learning

机译:协作有助于抽象类别学习

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We examined the effects of collaboration (dyads vs. individuals) and category structure (coherent vs. incoherent) on learning and transfer. Working in dyads or individually, participants classified examples from either an abstract coherent category, the features of which are not fixed but relate in a meaningful way, or an incoherent category, the features of which do not relate meaningfully. All participants were then tested individually. We hypothesized that dyads would benefit more from classifying the coherent category structure because past work has shown that collaboration is more beneficial for tasks that build on shared prior knowledge and provide opportunities for explanation and abstraction. Results showed that dyads improved more than individuals during the classification task regardless of category coherence, but learning in a dyad improved inference-test performance only for participants who learned coherent categories. Although participants in the coherent categories performed better on a transfer test, there was no effect of collaboration.
机译:我们研究了合作(Dyads Vs.)和类别结构(相干与非连贯)对学习和转移的影响。在Dyads或单独工作,参与者从抽象的相干类别中分类示例,其中的特征不是固定的,而是以有意义的方式或不连贯的类别,其特征不相关。然后单独测试所有参与者。我们假设Dy​​ads将从分类相干类别结构中受益更多,因为过去的工作表明,合作对基于共享事先知识的任务更有利,并为解释和抽象提供机会。结果表明,无论类别一致性,Dyads在分类任务期间,Dyads在分类任务中提高了多个人,而是在Dyad中学习,仅限于学习连贯类别的参与者改善推理测试性能。虽然参与者在转移测试中更好地进行了相干类别,但没有合作的影响。

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