Digital Audio Signature for 3D Printing Integrity

被引:39
|
作者
Belikovetsky, Sofia [1 ,2 ]
Solewicz, Yosef A. [1 ,2 ]
Yampolskiy, Mark [3 ]
Toh, Jinghui [4 ]
Elovici, Yuval [1 ,2 ]
机构
[1] Ben Gurion Univ Negev, Dept Software & Informat Syst Engn, IL-8410501 Beer Sheva, Israel
[2] Ben Gurion Univ Negev, Cyber Secur Res Ctr, IL-8410501 Beer Sheva, Israel
[3] Univ S Alabama, Dept Comp Sci, Mobile, AL 36688 USA
[4] Singapore Univ Technol & Design, ITrust Ctr Res Cyber Secur, Singapore 487372, Singapore
关键词
Additive manufacturing; cyber security; side channels; SECURITY CHALLENGES; SYSTEMS;
D O I
10.1109/TIFS.2018.2851584
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Additive manufacturing (AM, or 3D printing) is a novel manufacturing technology that has been adopted in industrial and consumer settings. However, the reliance of this technology on computerization has raised various security concerns. In this paper, we address issues associated with sabotage via tampering during the 3D printing process by presenting an approach that can verify the integrity of a 3D printed object. Our approach operates on acoustic side-channel emanations generated by the 3D printer's stepper motors, which results in a non-intrusive and real-time validation process that is difficult to compromise. The proposed approach constitutes two algorithms. The first algorithm is used to generate a master audio fingerprint for the verifiable unaltered printing process. The second algorithm is applied when the same 3D object is printed again, and this algorithm validates the monitored 3D printing process by assessing the similarity of its audio signature with the master audio fingerprint. To evaluate the quality of the proposed thresholds, we identify the detectability thresholds for the following minimal tampering primitives: insertion, deletion, replacement, and modification of a single tool path command. By detecting the deviation at the time of occurrence, we can stop the printing process for compromised objects, thus saving time and preventing material waste. We discuss various factors that impact the method, such as background noise, audio device changes, and different audio recorder positions.
引用
收藏
页码:1127 / 1141
页数:15
相关论文
共 50 条
  • [31] 3D printing
    Des Eng (London), (17):
  • [32] 3D printing
    Dewit, Bertrand
    RADIOTHERAPY AND ONCOLOGY, 2024, 194 : S2 - S2
  • [33] 3D printing
    Attila, Gombos
    Muanyag Es Gumi/Plastics and Rubber, 2005, 42 (03): : 89 - 93
  • [34] Digital reproduction of historical building ornamental components: From 3D scanning to 3D printing
    Xu, Jie
    Ding, Lieyun
    Love, Peter E. D.
    AUTOMATION IN CONSTRUCTION, 2017, 76 : 85 - 96
  • [35] 3-D Printed Object Authentication Based on Printing Noise and Digital Signature
    Peng, Fei
    Yang, Jing
    Long, Min
    IEEE TRANSACTIONS ON RELIABILITY, 2019, 68 (01) : 342 - 353
  • [36] Is 3D printing an inclusive innovation?: An examination of 3D printing in Brazil
    Woodson, Thomas
    Alcantara, Julia Torres
    do Nascimento, Milena Silva
    TECHNOVATION, 2019, 80-81 : 54 - 62
  • [37] 3D Printing - Evaluating Particle Emissions of a 3D Printing Pen
    Sigloch, Heike
    Bierkandt, Frank S.
    Singh, Ajay, V
    Gadicherla, Ashish K.
    Laux, Peter
    Luch, Andreas
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2020, (164): : 1 - 15
  • [38] 3D Vision in 3D Concrete Printing
    Sokolov, Dmitrii
    Mechtcherine, Viktor
    FOURTH RILEM INTERNATIONAL CONFERENCE ON CONCRETE AND DIGITAL FABRICATION, DC 2024, 2024, 53 : 182 - 189
  • [39] Recyclable thermosetting polymers for digital light processing 3D printing
    Chen, Zhiqiang
    Yang, Meng
    Ji, Mengke
    Kuang, Xiao
    Qi, H. Jerry
    Wang, Tiejun
    MATERIALS & DESIGN, 2021, 197
  • [40] Reconfigurable Polymer Networks for Digital Light Processing 3D Printing
    Fang, Zizheng
    Shi, Yunpeng
    Zhang, Yuhua
    Zhao, Qian
    Wu, Jingjun
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (13) : 15584 - 15590