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准确和有偏差的意外事件判断背后的学习机制。

Learning mechanisms underlying accurate and biased contingency judgments.

作者信息

Matute Helena, Blanco Fernando, Díaz-Lago Marcos

机构信息

Department of Psychology.

出版信息

J Exp Psychol Anim Learn Cogn. 2019 Oct;45(4):373-389. doi: 10.1037/xan0000222. Epub 2019 Aug 5.

Abstract

Many experiments have shown that humans and other animals can detect contingency between events accurately. This learning is used to make predictions and to infer causal relationships, both of which are critical for survival. Under certain conditions, however, people tend to overestimate a null contingency. We argue that a successful theory of contingency learning should explain both results. The main purpose of the present review is to assess whether cue-outcome associations might provide the common underlying mechanism that would allow us to explain both accurate and biased contingency learning. In addition, we discuss whether associations can also account for causal learning. After providing a brief description on both accurate and biased contingency judgments, we elaborate on the main predictions of associative models and describe some supporting evidence. Then, we discuss a number of findings in the literature that, although conducted with a different purpose and in different areas of research, can also be regarded as supportive of the associative framework. Finally, we discuss some problems with the associative view and discuss some alternative proposals as well as some of the areas of current debate. (PsycINFO Database Record (c) 2019 APA, all rights reserved).

摘要

许多实验表明,人类和其他动物能够准确地检测事件之间的关联性。这种学习被用于进行预测和推断因果关系,而这两者对于生存都至关重要。然而,在某些情况下,人们往往会高估零关联性。我们认为,一个成功的关联性学习理论应该能够解释这两种结果。本综述的主要目的是评估线索-结果关联是否可能提供一种共同的潜在机制,使我们能够解释准确的和有偏差的关联性学习。此外,我们还讨论了关联是否也能解释因果学习。在简要描述了准确的和有偏差的关联性判断之后,我们详细阐述了关联模型的主要预测,并描述了一些支持性证据。然后,我们讨论了文献中的一些研究结果,这些研究虽然目的不同且在不同的研究领域进行,但也可以被视为支持关联框架。最后,我们讨论了关联观点存在的一些问题,并讨论了一些替代方案以及当前争论的一些领域。(PsycINFO数据库记录(c)2019美国心理学会,保留所有权利)

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