arXiv:2511.15322cs.CV2025-11被引 1

自适应阈值模式提升指纹伪造检测抗干扰能力

Adaptive thresholding pattern for fingerprint forgery detection

  • 多层小波变换结合各向异性扩散,动态调整阈值提取特征
  • 在90%像素缺失和70×70块缺失下准确率分别高出对手8%和5%
  • 特别适合应对环境噪声与恶意篡改造成的图像失真

指纹活体检测系统易受伪造攻击,威胁生物识别安全。本文提出一种基于自适应阈值模式的指纹伪造检测算法,通过输入图像的各向异性扩散处理,并经三层小波变换,对不同层系数进行自适应阈值化后拼接成特征向量,再由SVM分类器判别。研究还系统分析了像素缺失、块缺失及噪声污染等常见畸变的影响。实验表明,本方法在90%像素缺失和70×70块缺失场景下,准确率分别较现有方法提升约8%和5%,展现出更强的鲁棒性,适用于复杂环境下的真实应用场景。

原文摘要 · Abstract (English)

Fingerprint liveness detection systems have been affected by spoofing, which is a severe threat for fingerprint-based biometric systems. Therefore, it is crucial to develop some techniques to distinguish the fake fingerprints from the real ones. The software based techniques can detect the fingerprint forgery automatically. Also, the scheme shall be resistant against various distortions such as noise contamination, pixel missing and block missing, so that the forgers cannot deceive the detector by adding some distortions to the faked fingerprint. In this paper, we propose a fingerprint forgery detection algorithm based on a suggested adaptive thresholding pattern. The anisotropic diffusion of the input image is passed through three levels of the wavelet transform. The coefficients of different layers are adaptively thresholded and concatenated to produce the feature vector which is classified using the SVM classifier. Another contribution of the paper is to investigate the effect of various distortions such as pixel missing, block missing, and noise contamination. Our suggested approach includes a novel method that exhibits improved resistance against a range of distortions caused by environmental phenomena or manipulations by malicious users. In quantitative comparisons, our proposed method outperforms its counterparts by approximately 8% and 5% in accuracy for missing pixel scenarios of 90% and block missing scenarios of size 70x70 , respectively. This highlights the novelty approach in addressing such challenges.

指纹识别伪造检测自适应阈值鲁棒性

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