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Low-level correlations between object properties and viewpoint can cause viewpoint-dependent object recognition

机译:对象属性和视点之间的低级关联可能导致视点相关的对象识别

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Viewpoint-dependent recognition performance of 3-D objects has often been taken as an indication of a viewpoint-dependent object representation. This viewpoint dependence is most often found using metrically manipulated objects. We aim to investigate whether instead these results can be explained by viewpoint and object property (e.g. curvature) information not being processed independently at a lower level, prior to object recognition itself. Multidimensional signal detection theory offers a useful framework, allowing us to model this as a low-level correlation between the internal noise distributions of viewpoint and object property dimensions.In Experiment 1, we measured these correlations using both Yes/No and adjustment tasks. We found a good correspondence across tasks, but large individual differences. In Experiment 2, we compared these results to the viewpoint dependence of object recognition through a Yes/No categorization task. We found that viewpoint-independent object recognition could not be fully reached using our stimuli, and that the pattern of viewpoint dependence was strongly correlated with the low-level correlations we measured earlier. In part, however, the viewpoint was abstracted despite these correlations.We conclude that low-level correlations do exist prior to object recognition, and can offer an explanation for some viewpoint effects on the discrimination of metrically manipulated 3-D objects.
机译:3D对象的视点相关识别性能通常被视为视点相关对象表示的指示。这种视点依赖性最常见于使用度量操纵的对象。我们旨在研究是否可以通过在物体识别本身之前未在较低级别上独立处理的视点和物体属性(例如曲率)信息来解释这些结果。多维信号检测理论提供了一个有用的框架,使我们可以将其建模为视点内部噪声分布与对象属性尺寸之间的低级相关性。在实验1中,我们使用是/否和调整任务测量了这些相关性。我们发现各个任务之间具有良好的对应关系,但个体差异很大。在实验2中,我们通过“是/否”分类任务将这些结果与对象识别的视点依赖性进行了比较。我们发现,使用我们的刺激无法完全实现与视点无关的物体识别,并且视点依赖性的模式与我们先前测得的低水平相关性密切相关。然而,尽管有这些相关性,但部分地将视点抽象化。我们得出结论,在对象识别之前确实存在低级相关性,并且可以为视点对度量操纵的3-D对象的辨别提供一些解释。

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