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Unconstrained License Plate Detection Using the Hausdorff Distance

机译:使用Hausdorff距离的无限制车牌检测

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This paper reports on a new technique for unconstrained license plate detection in a surveillance context. The proposed algorithm quickly finds license plates by performing the following steps. The image is first pre-processed to extract the edges; opening with linear structuring elements ensures that plate sides are enhanced. Multiple scans using the Hausdorff distance are made through the vertical edge map with binary templates representing a pair of vertical lines (with varying gap to account for unknown plate size), so they efficiently pinpoint areas in the image where plates may be located. Inside those areas, the Hausdorff is used again, this time over the gradient image and with a family of templates corresponding to rectangles which have been subjected to geometric transformations (to account for perspective effects). The end result is a set of plate location candidates, each associated to a confidence level that is a function of the quality of match between the image and the template. An additional criterion based on the symmetry of plate shapes also supplies complementary information about each hypothesis that allows rejection of many bad candidates. Examples are given to show the performance of the proposed method.
机译:本文报告了一种在监视环境中无限制车牌检测的新技术。所提出的算法通过执行以下步骤快速找到车牌。首先对图像进行预处理以提取边缘。带有线性结构元件的开口可确保增强板的侧面。使用Hausdorff距离通过垂直边缘图进行多次扫描,并使用代表一对垂直线的二进位模板进行二进制扫描(间隙变化以说明未知的印版尺寸),因此它们可以有效地查明图像中可能放置印版的区域。在这些区域内,再次使用Hausdorff,这次是在渐变图像上使用,并使用一系列模板,这些模板对应于已进行几何变换(考虑到透视效果)的矩形。最终结果是一组印版位置候选者,每个候选者都与置信度相关联,置信度是图像和模板之间匹配质量的函数。基于板形对称性的附加标准还提供了关于每个假设的补充信息,从而可以拒绝许多不良候选对象。举例说明了该方法的性能。

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