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Supervised classification of early perceptual structure in dot patterns

机译:DOT模式中早期感知结构的监督分类

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摘要

A supervised algorithm for computing perceptual groupings in dot patterns is presented. The algorithm uses shape features of the polygons in the Voronoi tessellation of the input pattern. The training patterns identified by humans are used to obtain an initial nocontextual classification which is then refined by a probabilistic relaxation labeling.
机译:提出了一种用于点模式中计算感知分组的监督算法。该算法使用输入图案的Voronoi Telsellation中的多边形的形状特征。人类识别的训练模式用于获得初始NoContextual分类,然后通过概率松弛标记改进。

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