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Alignment-Free Cancellable Template with Clustered-Minutiae Local Structure

机译:具有簇状细节局部结构的免对准可取消模板

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Cancellable fingerprint template has increasingly received interest in research thanks to not only the security for the user's original features but also the stable performance for the system. In this paper, we propose a new method to design cancellable fingerprint template with local structure by clustering the minutiae using the k Nearest Neighbor (kNN) algorithm. In other words, k minutiae in a fingerprint that are closest to a reference minutia form a local structure. Pairwise features from the reference minutia and each of the member in the cluster are extracted and used for local structure matching. The partial Discrete Fourier Transformation was applied as the non-invertible transformation. This method has been evaluated with four public databases FVC2002 DB1-DB3, and FVC2004 DB2. The Equal Error Rate achieved for each database is 0.2%, 0.04%, 4.78%, and 7.64%, respectively.
机译:可取消的指纹模板不仅由于用户原始功能的安全性,而且由于系统的稳定性能而引起了越来越多的研究兴趣。在本文中,我们提出了一种新的方法,该方法通过使用k最近邻(k最近邻)(kNN)算法对细节进行聚类来设计具有局部结构的可取消指纹模板。换句话说,指纹中最接近参考细节的k个细节形成局部结构。从参考细节和聚类中的每个成员的成对特征被提取出来,并用于局部结构匹配。部分离散傅里叶变换被用作不可逆变换。已使用四个公共数据库FVC2002 DB1-DB3和FVC2004 DB2对这种方法进行了评估。每个数据库的均等错误率分别为0.2%,0.04%,4.78%和7.64%。

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