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Minutiae Extraction From Level 1 Features of Fingerprint

机译:从1级指纹特征中提取细节

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Fingerprint features can be divided into three major categories based on the granularity at which they are extracted: level 1, level 2, and level 3 features. Orientation field, ridge frequency field, and minutiae set are three fundamental components of fingerprint, where the orientation field and ridge frequency field are regarded as level 1 features and minutiae set as level 2 features. It is generally believed that level 1 features, especially orientation field, can be reconstructed from level 2 features, i.e., minutiae. However, it is still a question that if minutiae can be extracted from level 1 features. In this paper, we analyze the relations between level 1 and level 2 features using the frequency modulation (FM) model and propose an approach to extract minutiae from level 1 features (i.e., orientation field and frequency field). The proposed algorithm is evaluated on NIST SD27 and FVC2002 DB1 databases. The true detection rate (TDR) and false detection rate (FDR) of minutiae detection on NIST SD27 and FVC2002 DB1 are about 45% and 30% compared with manually marked minutiae, respectively, with level 1 features extracted at a block size of 16 pixels. When pixelwise orientation and frequency fields are available, TDR and FDR can reach 70% and 25%, respectively. With a smaller block size, the minutiae recovering accuracy can be even higher. Our quantitative and experimental results show the deep relationship between level 1 and level 2 features of a fingerprint.
机译:根据提取指纹特征的粒度,可以将其分为三大类:1级,2级和3级特征。方向场,脊频率场和细节集是指纹的三个基本组成部分,其中方向场和脊频率场被视为1级特征,而细节集被视为2级特征。通常认为,可以从2级特征即细节部分重建1级特征,特别是取向场。但是,是否可以从1级特征中提取细节仍然是一个问题。在本文中,我们使用调频(FM)模型分析了1级和2级特征之间的关系,并提出了一种从1级特征(即方向场和频率场)中提取细节的方法。在NIST SD27和FVC2002 DB1数据库上对提出的算法进行了评估。与手动标记的细节相比,NIST SD27和FVC2002 DB1上的细节检测的真实检测率(TDR)和错误检测率(FDR)分别约为16%像素的1级特征提取的手动标记的细节。当像素方向和频率字段可用时,TDR和FDR分别可以达到70%和25%。使用较小的块大小,细节恢复精度甚至可以更高。我们的定量和实验结果显示了指纹的1级和2级特征之间的深层关系。

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