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Theres Waldo! A Normalization Model of Visual Search Predicts Single-Trial Human Fixations in an Object Search Task

机译:有沃尔多!视觉搜索的归一化模型可预测对象搜索任务中的单次尝试人类注视

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摘要

When searching for an object in a scene, how does the brain decide where to look next? Visual search theories suggest the existence of a global “priority map” that integrates bottom-up visual information with top-down, target-specific signals. We propose a mechanistic model of visual search that is consistent with recent neurophysiological evidence, can localize targets in cluttered images, and predicts single-trial behavior in a search task. This model posits that a high-level retinotopic area selective for shape features receives global, target-specific modulation and implements local normalization through divisive inhibition. The normalization step is critical to prevent highly salient bottom-up features from monopolizing attention. The resulting activity pattern constitues a priority map that tracks the correlation between local input and target features. The maximum of this priority map is selected as the locus of attention. The visual input is then spatially enhanced around the selected location, allowing object-selective visual areas to determine whether the target is present at this location. This model can localize objects both in array images and when objects are pasted in natural scenes. The model can also predict single-trial human fixations, including those in error and target-absent trials, in a search task involving complex objects.
机译:在场景中搜索对象时,大脑如何决定下一步要看的地方?视觉搜索理论表明,存在一个全局的“优先级地图”,该地图将自下而上的视觉信息与自上而下的特定于目标的信号集成在一起。我们提出了一种视觉搜索的机制模型,该模型与最近的神经生理学证据相符,可以在杂乱的图像中定位目标,并预测搜索任务中的单次尝试行为。该模型假定,对形状特征有选择性的高级视网膜局部区域将接受全局的,针对特定目标的调节,并通过分裂抑制实现局部归一化。规范化步骤对于防止自下而上的显着特征垄断注意力至关重要。所得的活动模式构成一个优先级映射,该映射跟踪本地输入和目标特征之间的相关性。选择该优先级图的最大值作为关注点。然后在所选位置周围在空间上增强视觉输入,从而允许对象选择视觉区域确定目标是否存在于此位置。该模型可以在阵列图像中以及在自然场景中粘贴对象时定位对象。该模型还可以预测涉及复杂对象的搜索任务中的单次试验人类注视,包括那些有错误和无目标试验的人注视。

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