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Contrasting predictions of low- and high-threshold models for the detection of changing visual features

机译:低阈值模型和高阈值模型的对比预测,用于检测变化的视觉特征

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Change blindness is the failure of observers to notice otherwise obvious changes to a visual scene when those changes are masked in some way (eg by blotches or a blanking of the screen). Typically, change blindness is taken as evidence that our representation of the visual world is capacity limited. The locus of this capacity limit is thought to be visual short-term memory (vSTM). The capacity of vSTM is usually estimated with a high-threshold model which assumes that each element in the stimulus array is either fully encoded or not encoded at all, and, furthermore, that false alarms can arise only by guessing, not by noise. Low-threshold models, by contrast, suggest that false alarms can arise by noise at the level of detection/discrimination and/or decision. In this study, we use a well-controlled stimulus display in which a single element changes over a blanking of the screen and contrast predictions from a popular high-threshold model of vSTM with the predictions of a low-threshold model (specifically, the sample-size model) of visual search and vSTM. The data were better predicted by the low-threshold model.
机译:改变盲目性是观察者无法以某种方式(例如,斑点或屏幕空白)掩盖视觉场景的其他明显变化。通常,变更盲目性被视为我们对视觉世界表示能力受限的证据。该容量限制的位置被认为是视觉短期记忆(vSTM)。 vSTM的容量通常是通过一个高阈值模型来估计的,该模型假定刺激阵列中的每个元素都已完全编码或完全未编码,此外,虚假警报只能通过猜测而不是噪声来产生。相比之下,低阈值模型表明,在检测/区分和/或决策级别,噪声可能会引起虚假警报。在这项研究中,我们使用控制良好的刺激显示,其中单个元素在屏幕的空白处发生变化,并且对比流行的vSTM高阈值模型与低阈值模型(特别是样本尺寸模型)的视觉搜索和vSTM。低阈值模型可以更好地预测数据。

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