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Adversarial Detection of Counterfeited Printable Graphical Codes: Towards 'Adversarial Games' In Physical World

机译:伪造可打印图形代码的对抗检测:面向物理世界中的“对抗游戏”

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This paper addresses a problem of anti-counterfeiting of physical objects and aims at investigating a possibility of counterfeited printable graphical code detection from a machine learning perspectives. We investigate a fake generation via two different deep regeneration models and study the authentication capacity of several discriminators on the data set of real printed graphical codes where different printing and scanning qualities are taken into account. The obtained experimental results provide a new insight on scenarios, where the printable graphical codes can be accurately cloned and could not be distinguished.
机译:本文针对物理对象的防伪问题,旨在从机器学习的角度研究伪造可打印图形代码检测的可能性。我们通过两个不同的深度再生模型调查伪造,并在考虑了不同打印和扫描质量的情况下,对真实印刷图形代码数据集上的几个鉴别器的身份验证能力进行了研究。获得的实验结果为方案提供了新的见解,其中可打印的图形代码可以准确地克隆并且无法区分。

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