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1D BAR CODE READING ON CAMERA PHONES

机译:相机电话上的一维条形码读取

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摘要

The availability of camera phones provides people with a mobile platform for decoding bar codes, whereas conventional scanners lack mobility. However, using a normal camera phone in such applications is challenging due to the out-of-focus problem. In this paper, we present the research effort on the bar code reading algorithms using a VGA camera phone, NOKIA 7650. EAN-13, a widely used 1D bar code standard, is taken as an example to show the efficiency of the method. A wavelet-based bar code region location and knowledge-based bar code segmentation scheme is applied to extract bar code characters from poor-quality images. All the segmented bar code characters are input to the recognition engine, and based on the recognition distance, the bar code character string with the smallest total distance is output as the final recognition result of the bar code. In order to train an efficient recognition engine, the modified Generalized Learning Vector Quantization (GLVQ) method is designed for optimizing a feature extraction matrix and the class reference vectors. 19 584 samples segmented from more than 1000 bar code images captured by NOKIA 7650 are involved in the training process. Testing on 292 bar code images taken by the same phone, the correct recognition rate of the entire bar code set reaches 85.62%. We are confident that auto focus or macro modes on camera phones will bring the presented method into real world mobile use.
机译:照相电话的可用性为人们提供了一个用于解码条形码的移动平台,而传统的扫描仪缺乏移动性。然而,由于失焦问题,在此类应用中使用普通照相手机具有挑战性。在本文中,我们介绍了对使用VGA照相电话NOKIA 7650的条形码读取算法的研究工作。以广泛使用的一维条形码标准EAN-13为例,说明了该方法的有效性。基于小波的条形码区域定位和基于知识的条形码分割方案被应用于从劣质图像中提取条形码字符。将所有分割后的条形码字符输入到识别引擎,并基于识别距离,输出总距离最小的条形码字符串作为条形码的最终识别结果。为了训练有效的识别引擎,设计了改进的广义学习矢量量化(GLVQ)方法来优化特征提取矩阵和类参考矢量。从诺基亚7650捕获的1000多个条形码图像中分割出的19584个样本参与了培训过程。对同一部手机拍摄的292张条形码图像进行测试,整个条形码集的正确识别率达到85.62%。我们相信照相手机上的自动对焦或微距模式将把提出的方法带入现实世界的移动用途。

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