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Real time road sign detection based on rotational center voting and shape analysis

机译:基于旋转中心投票和形状分析的实时路标检测

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We present a real time road sign detection framework based on color component extraction, rotational center voting and shape analysis. The color component extraction comes from so called color double-opponent in human primary visual cortex in which one color is excited and another is inhibited. For the rotational center voting, we use the pairwise gradient vectors vote for their rotational symmetry centers by which centers and scales of regular polygons can be detected. Meanwhile the points which voting to the centers will be recorded and the categories of the sign shapes can be decided by analyzing the points. The method is tested on Chinese road sign dataset which is collected ourselves and also on the UHA dataset used by many other researchers. The experiment shows that the proposed method is invariant to translation, scale, rotation and partial occlusions.
机译:我们提出了一种基于颜色成分提取,旋转中心投票和形状分析的实时路标检测框架。颜色成分提取来自人类初级视觉皮层中所谓的双色对色,其中一种颜色被激发而另一种颜色被抑制。对于旋转中心投票,我们使用成对的梯度矢量对它们的旋转对称中心进行投票,通过它们可以检测规则多边形的中心和比例。同时将记录投票给中心的点,并通过分析这些点来确定标志形状的类别。该方法在我们自己收集的中国道路标志数据集上以及在许多其他研究人员使用的UHA数据集上进行了测试。实验表明,该方法对平移,缩放,旋转和部分遮挡均不变。

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