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The Development of Hand-Centered Visual Representations in the Primate Brain: A Computer Modeling Study Using Natural Visual Scenes

机译:灵长类动物大脑中以手为中心的视觉表示的发展:使用自然视觉场景的计算机建模研究

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摘要

Neurons that respond to visual targets in a hand-centered frame of reference have been found within various areas of the primate brain. We investigate how hand-centered visual representations may develop in a neural network model of the primate visual system called VisNet, when the model is trained on images of the hand seen against natural visual scenes. The simulations show how such neurons may develop through a biologically plausible process of unsupervised competitive learning and self-organization. In an advance on our previous work, the visual scenes consisted of multiple targets presented simultaneously with respect to the hand. Three experiments are presented. First, VisNet was trained with computerized images consisting of a realistic image of a hand and a variety of natural objects, presented in different textured backgrounds during training. The network was then tested with just one textured object near the hand in order to verify if the output cells were capable of building hand-centered representations with a single localized receptive field. We explain the underlying principles of the statistical decoupling that allows the output cells of the network to develop single localized receptive fields even when the network is trained with multiple objects. In a second simulation we examined how some of the cells with hand-centered receptive fields decreased their shape selectivity and started responding to a localized region of hand-centered space as the number of objects presented in overlapping locations during training increases. Lastly, we explored the same learning principles training the network with natural visual scenes collected by volunteers. These results provide an important step in showing how single, localized, hand-centered receptive fields could emerge under more ecologically realistic visual training conditions.
机译:在灵长类动物大脑的各个区域都发现了对以手为中心的参照系中的视觉目标做出反应的神经元。我们研究了以手为中心的视觉表示如何在称为VisNet的灵长类动物视觉系统的神经网络模型中发展的过程,该模型是在针对自然视觉场景看到的手的图像上进行训练的。模拟显示了这种神经元如何通过无监督的竞争性学习和自我组织的生物学上合理的过程发展。在我们之前工作的一项进展中,视觉场景由相对于手同时呈现的多个目标组成。提出了三个实验。首先,对VisNet进行了计算机化图像训练,该图像包括一只手的逼真的图像和各种自然物体,它们在训练过程中呈现在不同的带纹理的背景中。然后仅在手附近用一个纹理对象测试网络,以验证输出单元格是否能够用单个局部接受场建立以手为中心的表示。我们解释了统计去耦的基本原理,该原理使网络的输出单元即使在使用多个对象训练网络时也可以开发出一个局部的接受场。在第二个模拟中,我们研究了随着训练过程中重叠位置出现的对象数量的增加,一些具有手心接受区域的细胞如何降低其形状选择性并开始对手心空间的局部区域做出响应。最后,我们探索了使用志愿者收集的自然视觉场景训练网络的相同学习原则。这些结果提供了重要的一步,显示了在更加生态现实的视觉训练条件下如何出现单一的,局部的,以手为中心的感受野。

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