双变量实验的连续心理物理学;一种新的 "贝叶斯参与者 "方法

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-11-01 DOI:10.1177/20416695231214440
Michael Falconbridge, Robert L. Stamps, Mark Edwards, David R. Badcock
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引用次数: 0

摘要

作为一种在自然条件下快速收集数据的方法,人们对连续心理物理方法的兴趣与日俱增。这种方法要求刺激物连续随机变化,这样参与者就无法猜测未来的刺激状态。参与者的任务一般是使用连续的反应选项做出连续的反应。这些特点在数据中引入了变异性,而这些变异性在传统的基于试验的实验中是不存在的。考虑到连续心理物理方法的独特弱点和优点,我们认为这些方法非常适合快速绘制阈值以上刺激变量之间的关系图,例如移动目标的感知方向与目标移动背景方向之间的函数关系。我们的研究表明,使用新颖的 "贝叶斯参与者 "模型对这种双变量实验中的参与者进行建模,有助于将噪声较大的连续数据转换为噪声较小的形式,从而与基于试验的等效实验数据相类似。我们还表明,在连续实验中,刺激暴露时间比通常时间长会导致适应,即使是参与者没有意识到的特征。我们还讨论了减轻适应影响的方法。
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Continuous psychophysics for two-variable experiments; A new “Bayesian participant” approach
Interest in continuous psychophysical approaches as a means of collecting data quickly under natural conditions is growing. Such approaches require stimuli to be changed randomly on a continuous basis so that participants can not guess future stimulus states. Participants are generally tasked with responding continuously using a continuum of response options. These features introduce variability in the data that is not present in traditional trial-based experiments. Given the unique weaknesses and strengths of continuous psychophysical approaches, we propose that they are well suited to quickly mapping out relationships between above-threshold stimulus variables such as the perceived direction of a moving target as a function of the direction of the background against which the target is moving. We show that modelling the participant in such a two-variable experiment using a novel “Bayesian Participant” model facilitates the conversion of the noisy continuous data into a less-noisy form that resembles data from an equivalent trial-based experiment. We also show that adaptation can result from longer-than-usual stimulus exposure times during continuous experiments, even to features that the participant is not aware of. Methods for mitigating the effects of adaptation are discussed.
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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