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Batch Reading Densely Arranged QR Codes

机译:批量读取密集排列的QR码

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This paper presents BatchQR, a mobile APP that can batch read the densely arranged QR codes attached to caps of the tubes and vials in clinical and biological labs. The basic idea of BatchQR is to detect each code in the image and then decode in an one-by-one manner. However, the unique characteristics of the QR code and the application scenario bring technical challenges: First, off-the-shelf lightweight object detection mechanisms are unable to distinguish those densely arranged codes that are highly similar to each other; second, the focus area of the camera is limited, which blurs or distorts parts of the image. To this end, we propose a lightweight code detection mechanism, which can adaptively adjust operating parameters to identify densely arranged QR codes in practice. We also propose a simple but effective image refocus mechanism, which takes an auto-focused image and multiple refocused ones, and then replaces the blurred or distorted code parts with the high-quality counterparts in the refocused images. Comprehensive experimental results show that BatchQR can read 160-180 Version 1-L QR codes in batch with 90%-95% accuracy in 10-14s, which is only 4% of the time consumed by the regular QR code reader in the same situation.
机译:本文介绍了BatchQR,这是一个移动应用程序,可以批量读取临床和生物学实验室中附着在试管和小瓶盖上的密集排列的QR码。 BatchQR的基本思想是检测图像中的每个代码,然后以一对一的方式进行解码。但是,QR码的独特特征和应用场景带来了技术挑战:首先,现成的轻量级对象检测机制无法区分那些彼此高度相似的密集排列的代码。第二,相机的对焦区域有限,这会使图像的某些部分模糊或失真。为此,我们提出了一种轻量级的代码检测机制,该机制可以在实际中自适应地调整操作参数以识别密集排列的QR码。我们还提出了一种简单但有效的图像重聚焦机制,该机制可以获取自动聚焦的图像和多个重新聚焦的图像,然后将模糊或失真的代码部分替换为重新聚焦图像中的高质量对应部分。全面的实验结果表明,BatchQR可以在10-14s内批量读取160-180版1-L版本的QR码,准确率达到90%-95%,这是常规QR码阅读器在相同情况下所花费时间的4%。 。

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