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Binarization of Low-Quality Barcode Images Captured by Mobile Phones Using Local Window of Adaptive Location and Size

机译:使用自适应位置和大小的本地窗口将手机捕获的低质量条形码图像二值化

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摘要

It is difficult to directly apply existing binarization approaches to the barcode images captured by mobile device due to their low quality. This paper proposes a novel scheme for the binarization of such images. The barcode and background regions are differentiated by the number of edge pixels in a search window. Unlike existing approaches that center the pixel to be binarized with a window of fixed size, we propose to shift the window center to the nearest edge pixel so that the balance of the number of object and background pixels can be achieved. The window size is adaptive either to the minimum distance to edges or minimum element width in the barcode. The threshold is calculated using the statistics in the window. Our proposed method has demonstrated its capability in handling the nonuniform illumination problem and the size variation of objects. Experimental results conducted on 350 images captured by five mobile phones achieve about 100% of recognition rate in good lighting conditions, and about 95% and 83% in bad lighting conditions. Comparisons made with nine existing binarization methods demonstrate the advancement of our proposed scheme.
机译:由于其质量低,难以将现有的二值化方法直接应用于移动设备捕获的条形码图像。本文提出了一种新的方案来对这种图像进行二值化。条形码和背景区域通过搜索窗口中边缘像素的数量来区分。与现有的将像素二值化为固定大小的窗口居中的现有方法不同,我们建议将窗口中心移到最近的边缘像素,以便可以实现对象和背景像素数量的平衡。窗口大小可适应条形码的最小边缘距离或最小元素宽度。使用窗口中的统计信息计算阈值。我们提出的方法已经证明了其处理不均匀照明问题和物体尺寸变化的能力。在五种手机捕获的350张图像上进行的实验结果在良好的照明条件下可达到约100%的识别率,在恶劣的照明条件下可达到约95%和83%。与九种现有的二值化方法进行的比较证明了我们提出的方案的进步。

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