利用3D特征与图嵌入提升无接触指纹识别准确率
Improving Contactless Fingerprint Recognition with Robust 3D Feature Extraction and Graph Embedding
- 从无接触指纹中恢复3D形态与特征点等三维信息
- 通过3D图匹配算法实现跨姿态稳定识别,准确率显著提升
- 适用于多种手指姿态,对实际应用更具鲁棒性
无接触指纹近年来受到广泛关注。然而,现有方法仍将其视为二维平面指纹,沿用传统接触式二维识别技术,忽视了无接触指纹与接触指纹在模态上的差异,尤其忽略了其固有的3D特征。本文提出一种新型无接触指纹识别算法,旨在捕捉无接触指纹中揭示的3D特征而非仅依赖二维特征。该方法首先从输入的无接触指纹中恢复3D特征,包括3D形状模型和3D指纹特征(如纹线细节、方向等)。随后,基于提取的3D特征提出一种新颖的3D图匹配方法。此外,该方法能在多种手指姿态下对不同无接触指纹实现稳健的3D特征提取。实验结果表明,所提方法显著提升了无接触指纹的匹配准确率。尤为突出的是,由于采用3D嵌入,本方法在多种手指姿态下表现出稳定性能,相比以往基于2D的方法具有明显优势。
原文摘要 · Abstract (English)
Contactless fingerprint has gained lots of attention in recent fingerprint studies. However, most existing contactless fingerprint algorithms treat contactless fingerprints as 2D plain fingerprints, and still utilize traditional contact-based 2D fingerprints recognition methods. This recognition approach lacks consideration of the modality difference between contactless and contact fingerprints, especially the intrinsic 3D features in contactless fingerprints. This paper proposes a novel contactless fingerprint recognition algorithm that captures the revealed 3D feature of contactless fingerprints rather than the plain 2D feature. The proposed method first recovers 3D features from the input contactless fingerprint, including the 3D shape model and 3D fingerprint feature (minutiae, orientation, etc.). Then, a novel 3D graph matching method is proposed according to the extracted 3D feature. Additionally, the proposed method is able to perform robust 3D feature extractions on various contactless fingerprints across multiple finger poses. The results of the experiments on contactless fingerprint databases show that the proposed method successfully improves the matching accuracy of contactless fingerprints. Exceptionally, our method performs stably across multiple poses of contactless fingerprints due to 3D embeddings, which is a great advantage compared to 2D-based previous contactless fingerprint recognition algorithms.
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