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Image-Like 2D Barcodes Using Generalizations of the Kuznetsov–Tsybakov Problem

机译:使用Kuznetsov–Tsybakov问题的推广的类似于图像的二维条形码

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In this paper, we propose a novel method for generating visually appealing two-dimensional (2D) barcodes that resemble meaningful images to human observers. The technology of 2D barcodes, currently dominated by quick response codes, is widely adopted in many applications, including product tracking, document management, and general marketing. Such barcodes typically lack user friendly appearance and do not convey any visual significance to human observers. The proposed method addresses this problem by allowing 2D barcodes to resemble an arbitrary image or a logo. Our method is based on a generalization of the Kuznetsov–Tsybakov problem that served as a foundation for wet paper codes, commonly adopted in digital steganography. We introduce weaker statistical constraints to obtain additional flexibility allowing the barcode to assume the appearance of an arbitrary pattern. This paper provides the theoretical analysis of the proposed coding framework and a practical algorithm for rapid approximation of the optimal code. We also discuss the introduction of error correction capabilities, and experimentally evaluate a prototype implementation in a smartphone-based acquisition scenario.
机译:在本文中,我们提出了一种新颖的方法来生成视觉上吸引人的二维(2D)条形码,该条形码类似于对人类观察者有意义的图像。当前以快速响应代码为主的2D条形码技术已在许多应用中被广泛采用,包括产品跟踪,文档管理和一般营销。这样的条形码通常缺乏用户友好的外观并且不会向人类观察者传达任何视觉意义。所提出的方法通过允许二维条形码类似于任意图像或徽标来解决该问题。我们的方法基于Kuznetsov–Tsybakov问题的推广,该问题是数字隐写术中通常采用的湿纸代码的基础。我们引入了较弱的统计约束条件,以获得更大的灵活性,从而使条形码能够呈现任意图案的外观。本文提供了对所提出的编码框架的理论分析,以及一种用于快速逼近最佳代码的实用算法。我们还将讨论错误校正功能的引入,并在基于智能手机的采集方案中通过实验评估原型实现。

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