A Bayesian Algorithm for Reading 1D Barcodes.

Ender Tekin, James Coughlan
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引用次数: 25

Abstract

The 1D barcode is a ubiquitous labeling technology, with symbologies such as UPC used to label approximately 99% of all packaged goods in the US. It would be very convenient for consumers to be able to read these barcodes using portable cameras (e.g. mobile phones), but the limited quality and resolution of images taken by these cameras often make it difficult to read the barcodes accurately. We propose a Bayesian framework for reading 1D barcodes that models the shape and appearance of barcodes, allowing for geometric distortions and image noise, and exploiting the redundant information contained in the parity digit. An important feature of our framework is that it doesn't require that every barcode edge be detected in the image. Experiments on a publicly available dataset of barcode images explore the range of images that are readable, and comparisons with two commercial readers demonstrate the superior performance of our algorithm.

一维条码读取的贝叶斯算法。
一维条形码是一种无处不在的标签技术,在美国,大约99%的包装商品都使用UPC等符号。如果消费者能够使用便携式相机(例如手机)读取这些条形码,这将是非常方便的,但是这些相机拍摄的图像质量和分辨率有限,通常很难准确读取条形码。我们提出了一个贝叶斯框架,用于读取一维条形码,该框架模拟条形码的形状和外观,允许几何扭曲和图像噪声,并利用奇偶位中包含的冗余信息。我们的框架的一个重要特点是,它不需要检测图像中的每个条形码边缘。在公开可用的条形码图像数据集上进行实验,探索可读图像的范围,并与两个商业阅读器进行比较,证明了我们的算法的优越性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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