纺织学报 ›› 2026, Vol. 47 ›› Issue (04): 120-126.doi: 10.13475/j.fzxb.20250603401

• 纺织工程 • 上一篇    下一篇

异形网点结构提花织物的防伪功能设计与评价

张爱丹1,2(), 李杰1   

  1. 1 浙江理工大学 纺织科学与工程学院(国际丝绸学院), 浙江 杭州 310018
    2 浙江理工大学 浙江省丝绸与时尚文化研究中心, 浙江 杭州 310018
  • 收稿日期:2025-06-17 修回日期:2026-02-14 出版日期:2026-04-15 发布日期:2026-06-24
  • 作者简介:张爱丹(1979—),副教授,博士。主要研究方向为数码纺织品设计。E-mail:zad.andan@163.com
  • 基金资助:
    浙江省哲学社会科学规划项目(25LMJX001YB)

Design and evaluation of anti-counterfeiting jacquard fabrics with unconventional dot structures

ZHANG Aidan1,2(), LI Jie1   

  1. 1 College of Textile Science and Engineering(International Institute of Silk), Zhejiang Sci-Tech University, Hangzhou, Zhejiang 310018, China
    2 Silk and Fashion Culture Research Center of Zhejiang Province, Zhejiang Sci-Tech University, Hangzhou, Zhejiang 310018, China
  • Received:2025-06-17 Revised:2026-02-14 Published:2026-04-15 Online:2026-06-24

摘要:

针对现有防伪提花织物存在隐藏信息量少、形式单一与高度依赖功能性纱线等问题,提出一种以网点形状的排列组合构成信息的防伪织物设计方法。利用信息图将提花织物纹样图区分为信息与背景二部分,再将这两部分纹样分别离散为由不同网点形状表现的纹样图,织成提花织物获得防伪功能。对3组采用不同网点形状组合设计的防伪提花织物样品,使用模板匹配法进行信息提取,通过对提取信息的完整度,以及样品表面信息可感知度的比较分析,结果表明,网点形状的相似程度与信息隐藏效果成正比,与信息识别度成反比,且这3个因素之间有密切关联性。借助网点形状的差异,在不影响提花织物表现渐变纹样色的前提下,可实现复杂信息的置入和提取。研究结果为色彩仿真提花织物在防伪功能领域的应用提供参考。

关键词: 功能性织物, 防伪提花织物设计, 异形网点结构, 防伪信息隐藏, 防伪信息提取, 模板匹配

Abstract:

Objective Aiming at the low hidden information volume, style singularity and over-reliance on functional yarns of existing anti-counterfeiting jacquard fabrics, a fabric design and corresponding information extraction method was proposed based on unconventional dot arrangement and combination. The method enables embedding of diverse information into complex jacquard patterns and achieves anti-counterfeiting information extraction from physical fabric images, providing design ideas and case references for the development of high-value anti-counterfeiting jacquard fabrics.

Method Three unconventional dot types and their generation procedure were designed. Pairwise combinations of the three types converted the pattern and its anti-counterfeiting information image into dot patterns based on the original pattern grayscale to prepare anti-counterfeiting jacquard fabric samples. Scanned sample digital images were contrasted with fabric weave images generated with single dot shape and structural similarity and Hamming distance were used to evaluate information hiding and extraction effects respectively.

Results By calculating the structural similarity between six anti-counterfeiting jacquard fabric images and three non-anti-counterfeiting jacquard fabric images as well as the corresponding fabric weave images, the results showed that the ranking of structural similarity, from highest to lowest, was Butterfly-Heart shape combination, Butterfly-Rabbit shape combination, and then Rabbit-Heart shape combination. Additionally, the interchange of dot shapes between information and non-information areas demonstrated no significant impact on the structural similarity of the fabric sample images and their weave images. The normalized Hamming distance calculation between the extracted information images from the six anti-counterfeiting jacquard fabric sample images and the original information image revealed that the Hamming distances for the two Butterfly-Heart combination designs were 0.46 and 0.44, respectively, while the other four designs have Hamming distances between 0.09 and 0.11. Furthermore, the impact of the template cutting step size and matching threshold parameters on the information extraction effect was shown. Among the three cutting step sizes, groups 1-4 of extracted information images with a step size of 16 and 8 had similar recognition rates, which were better than those with a step size of 32. However, the recognition rates for groups 5-6 of the three step sizes were not satisfactory. In terms of matching threshold values, the best matching threshold range for the four anti-counterfeiting fabric samples using the Butterfly-Rabbit combination and Rabbit-Heart combination was 0.60-0.62, while for the two samples using the Butterfly-Heart combination, the best matching threshold values were 0.70 and 0.73, respectively.

Conclusion The experimental results were evaluated based on the similarity of the dot shapes used in anti-counterfeiting jacquard fabrics. It was found that the similarity of dot shapes is directly proportional to the information hiding effect and inversely proportional to the information extraction effect. Once the dot shape is determined, an appropriate matching threshold should be set first, followed by considering the template cutting step size. The higher the similarity of the dot shapes, the higher the template matching threshold needs to be set. Typically, the template cutting step size can be chosen as half the size of the dot shape unit. By utilizing the differences in dot shapes, this method can hide and extract complex information without affecting the gradient color pattern of the jacquard fabric. The design method of anti-counterfeiting jacquard fabric not only does not require any functional yarns, but also has a certain degree of freedom in the creative design of dot shapes and their combination, providing options for the diversified design of anti-counterfeiting jacquard fabrics.

Key words: functional fabric, anti-counterfeiting jacquard fabric design, unconventional dot structure, anti-counterfeiting information hiding, anti-counterfeiting information extraction, template matching

中图分类号: 

  • TS941.26

图1

3种异形网点形状"

图2

3种异形网点生成过程图"

图3

纹样图与信息图"

图4

蝴蝶形与兔子形组合"

图5

3幅防伪提花织物样品的扫描图"

图6

6幅提取的信息图"

表1

结构相似性计算结果"

对照组
类型
含防伪信息图像的结构相似性(S)
B-R B-H R-B R-H H-B H-R
实物图 0.28 0.31 0.44 0.26 0.29 0.24
组织图 0.88 0.95 0.88 0.87 0.95 0.87

表2

不同切割步长提取信息的归一化汉明距离"

编号 网点
形状
匹配
阈值
不同切割步长下归一化汉明距离
32 16 8
1 B-R 0.63 0.12 0.10 0.09
2 R-B 0.63 0.13 0.11 0.11
3 R-H 0.63 0.11 0.09 0.10
4 H-R 0.63 0.12 0.10 0.10
5 B-H 0.63 0.42 0.46 0.52
6 H-B 0.63 0.41 0.44 0.48

图7

6组提取信息图的归一化汉明距离值"

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