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Size Invariance By Dynamic Scaling in Neural Vision Systems

机译:神经视觉系统中动态缩放的尺寸不变性

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Vision systems in complex environments are faced with the problem of analyzing visual information on multiple scales to support segmentation and size invariant object recognition. We propose a system which detects relevant spatial scales in images and constructs an explicit size invariant representation. Further, it provides a means of navigating through scale space in the presence of ambiguous scale information, thus adds a behaving component to image analysis. The architecture is based on biologically realistic neural networks like neural fields and neurons with bandpass receptive field characteristics.
机译:复杂环境中的视觉系统面临着在多个尺度上分析视觉信息以支持分割和大小不变对象识别的问题。我们提出了一种检测图像中相关空间比例并构建显式尺寸不变表示的系统。此外,它提供了在存在不明确的缩放信息的情况下在缩放空间中导航的方法,从而为图像分析添加了行为组件。该体系结构基于生物现实的神经网络,例如神经场和具有带通接受场特性的神经元。

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