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A novel accurately automatic license plate localization method

机译:一种新颖的精确自动车牌定位方法

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Automatic license plate (LP) recognition is one of the most promising aspects of applying computer vision techniques towards intelligent transportation system. In order to recognize a license plate, the localization of it must be detected first. Obviously, accurately localize the plate from a vehicle image, is a crucial step of an ALPR system, which greatly affects the overall recognition performance. In this paper, we propose a color edge based algorithm in the preprocess step which not only consider the gray level discontinuity but also some color information between the LP region and non-LP region. Moreover, we adopt a morphological technique to extract edges instead of Sobel or Marr operator which is used mostly in other works. We also propose a concentric double window filtering method (CDWF) to handle the raw edge map. Then we choose the candidate LP region based on edge density. After the rough localization, we getting the LP's exact region by means of profile projections, and then using a mask map to represent the region. The segmentation result which is sent forward to LP recognition stage will improve further processing's efficiency. Considering some noise may be exist in the profile projection, the raw projection map may be inaccurate, fragmented or incomplete in some position, we could apply morphological reconstruction to the mask map. Finally we demonstrate our whole technique's performance with experiments.
机译:自动车牌(LP)识别是将计算机视觉技术应用于智能交通系统的最有前途的方面之一。为了识别车牌,必须首先检测其位置。显然,从车辆图像中准确定位车牌是ALPR系统的关键步骤,这极大地影响了整体识别性能。在本文中,我们在预处理步骤中提出了一种基于颜色边缘的算法,该算法不仅考虑了灰度不连续性,而且还考虑了LP区域和非LP区域之间的一些颜色信息。此外,我们采用一种形态学技术来提取边缘,而不是通常在其他工作中使用的Sobel或Marr算子。我们还提出了同心双窗口滤波方法(CDWF)来处理原始边缘图。然后,我们根据边缘密度选择候选LP区域。粗略定位后,我们通过轮廓投影获得LP的确切区域,然后使用遮罩图表示该区域。发送到LP识别阶段的分割结果将提高进一步处理的效率。考虑到轮廓投影中可能存在一些噪声,原始投影图在某些位置可能不准确,碎片化或不完整,因此可以对掩模图应用形态学重建。最后,我们通过实验演示了整个技术的性能。

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