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消除多个时间尺度的序列效应的歧义。

Disambiguating serial effects of multiple timescales.

作者信息

Gekas Nikos, McDermott Kyle C, Mamassian Pascal

机构信息

Laboratoire des Systèmes Perceptifs, Département d'études cognitives, École normale supérieure, PSL University, Paris, France.

School of Psychology, University of Nottingham, Nottingham, UK.

出版信息

J Vis. 2019 Jun 3;19(6):24. doi: 10.1167/19.6.24.

Abstract

What has been previously experienced can systematically affect human perception in the present. We designed a novel psychophysical experiment to measure the perceptual effects of adapting to dynamically changing stimulus statistics. Observers are presented with a series of oriented Gabor patches and are asked occasionally to judge the orientation of highly ambiguous test patches. We developed a computational model to quantify the influence of past stimuli presentations on the observers' perception of test stimuli over multiple timescales and to show that this influence is distinguishable from simple response biases. The experimental results reveal that perception is attracted toward the very recent past and simultaneously repulsed from stimuli presented at short to medium timescales and attracted to presentations further in the past. All effects differ significantly both on their relative strength and their respective duration. Our model provides a structured way of quantifying serial effects in psychophysical experiments, and it could help experimenters in identifying such effects in their data and distinguish them from less interesting response biases.

摘要

先前的经历能够系统地影响当下人类的感知。我们设计了一项新颖的心理物理学实验,以测量适应动态变化的刺激统计量所产生的感知效应。向观察者呈现一系列定向的加博尔斑,并偶尔要求他们判断高度模糊的测试斑的方向。我们开发了一个计算模型,以量化过去刺激呈现对观察者在多个时间尺度上对测试刺激的感知的影响,并表明这种影响与简单的反应偏差是可区分的。实验结果表明,感知被吸引到非常近的过去,同时被短到中等时间尺度上呈现的刺激所排斥,并被更久远过去的呈现所吸引。所有效应在其相对强度和各自持续时间上都有显著差异。我们的模型提供了一种在心理物理学实验中量化序列效应的结构化方法,它可以帮助实验者在其数据中识别此类效应,并将它们与不太有趣的反应偏差区分开来。

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