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A neural network model of object segmentation and feature binding in visual cortex

机译:视觉皮层中对象分割和特征绑定的神经网络模型

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The authors present neural network simulations of how the visual cortex may segment objects and bind attributes based on depth-from-occlusion. They briefly discuss one particular subprocess in the occlusion-based model most relevant to segmentation and binding: determination of the direction of figure. They propose that the model allows addressing a central issue in object recognition: how the visual system defines an object. In addition, the model was tested on illusory stimuli, with the network's response indicating the existence of robust psychophysical properties in the system.
机译:作者介绍了神经网络模拟,该视觉网络基于视觉从遮挡深度的角度如何将视觉皮层分割对象并绑定属性。他们简要讨论了基于咬合的模型中与分割和绑定最相关的一个特定子过程:确定图形的方向。他们提出,该模型可以解决对象识别中的核心问题:视觉系统如何定义对象。此外,该模型在虚幻刺激下进行了测试,网络的响应表明系统中存在强大的心理物理特性。

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