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Low Resolution QR-Code Recognition by Applying Super-Resolution Using the Property of QR-Codes

机译:通过使用QR码属性的超分辨率来识别低分辨率QR码

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This paper proposes a method for low resolution QR-code recognition. A QR-code is a two-dimensional binary symbol that can embed various information such as characters and numbers. To recognize a QR-code correctly and stably, the resolution of an input image should be high. In practice, however, recognition of a QR-code is usually difficult due to low resolution when it is captured from a distance. In this paper, we propose a method to improve the performance of low resolution QR-code recognition by using the super-resolution technique that generates a high resolution image from multiple low-resolution images. Although a QR-code is a binary pattern, it is observed as a grayscale image due to the degradation through the capturing process. Especially the pixels around the borders between white and black regions become ambiguous. To overcome this problem, the proposed method introduces a binary pattern constraint to generate super-resolved images appropriate for recognition. Experimental results showed that a recognition rate of 98% can be achieved by the proposed method, which is a 15.7% improvement in comparison with a method using a conventional super-resolution method.
机译:本文提出了一种低分辨率QR码识别方法。 QR码是二维二进制符号,可以嵌入各种信息,例如字符和数字。为了正确,稳定地识别QR码,输入图像的分辨率应该很高。然而,实际上,由于从远处捕获时分辨率低,通常很难识别QR码。在本文中,我们提出了一种使用超分辨率技术来提高低分辨率QR码识别性能的方法,该技术可以从多个低分辨率图像中生成高分辨率图像。尽管QR码是二进制模式,但是由于捕获过程中的降级,QR码被视为灰度图像。尤其是,白色和黑色区域之间的边界周围的像素变得模棱两可。为了克服这个问题,提出的方法引入了二进制模式约束以生成适合于识别的超分辨图像。实验结果表明,该方法可实现98%的识别率,与使用常规超分辨率方法的识别率相比提高了15.7%。

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