Protection against Counterfeiting Attacks in 3D Printing by Streaming Signature-embedded Manufacturing Process Instructions

Akash Tiwari, Eduardo Jose Villasenor, Nikhil Gupta, N. Reddy, R. Karri, S. Bukkapatnam
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引用次数: 5

Abstract

The emerging Manufacturing-as-a-Service (MaaS) paradigm democratizes manufacturing by connecting people and businesses with manufacturing requests to those with manufacturing resources, via a digital thread. However, the digital thread can be vulnerable to attacks such as counterfeiting, IP theft and sabotage. An approach based on embedding custom anti-counterfeiting signatures in the design files, on-the-fly, is presented to protect against counterfeiting attacks. An experimental study of the effect of geometric and dimensional variations of the signatures in printed components, as well as the effect of the variations on the read rates of the codes are reported. We conduct experiments using a polyjet printer with veroclear material to study the positional and dimensional variations introduced in the embedded signature and the resulting effect on the readability of the design. The results suggest that signatures with spherical units of size φ0.25 mm embedded within 20 mm cubic components can be printed with location precision of ~5% (about 0.1 mm), and dimensional deviation of the order of 0.01 mm. A statistical model is developed to show that these variations pose minimum interference on the readability of the signatures. Embedding of randomized signatures offers security by serving as anti-counterfeit marks in the final part, and makes it harder to reverse engineer and produce counterfeited parts.
通过流签名嵌入式制造工艺指令防止3D打印中的伪造攻击
新兴的制造即服务(MaaS)范式通过数字线程将具有制造请求的人员和企业与具有制造资源的人员和企业连接起来,从而使制造民主化。然而,数字线很容易受到假冒、知识产权盗窃和破坏等攻击。提出了一种基于在动态设计文件中嵌入自定义防伪签名的防伪方法。本文报道了印刷元件中签名的几何和尺寸变化对码读率的影响的实验研究。我们使用具有veroclear材料的多喷打印机进行实验,以研究嵌入签名中引入的位置和尺寸变化及其对设计可读性的影响。结果表明,在20 mm的立方元件中嵌入φ0.25 mm的球形单元,可以打印出定位精度为~5%(约0.1 mm),尺寸偏差为0.01 mm左右的签名。开发了一个统计模型来显示这些变化对签名可读性的干扰最小。随机签名的嵌入在最终零件中起到防伪标记的作用,提高了安全性,同时也增加了逆向工程和制造假冒零件的难度。
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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