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首页> 外文期刊>Systems Journal, IEEE >A Fast Minutiae-Based Fingerprint Recognition System
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A Fast Minutiae-Based Fingerprint Recognition System

机译:快速的基于细节的指纹识别系统

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摘要

The spectral minutiae representation is a method to represent a minutiae set as a fixed-length feature vector, which is invariant to translation, and in which rotation and scaling become translations, so that they can be easily compensated for. These characteristics enable the combination of fingerprint recognition systems with template protection schemes that require as an input a fixed-length feature vector. Based on the spectral minutiae features, this paper introduces two feature reduction algorithms: the Column Principal Component Analysis and the Line Discrete Fourier Transform feature reductions, which can efficiently compress the template size with a reduction rate of 94%. With reduced features, we can also achieve a fast minutiae-based matching algorithm. This paper presents the performance of the spectral minutiae fingerprint recognition system and shows a matching speed with 125 000 comparisons per second on a PC with Intel Pentium D processor 2.80 GHz and 1 GB of RAM. This fast operation renders our system suitable as a preselector for a large-scale fingerprint identification system, thus significantly reducing the time to perform matching, especially in systems operating at geographical level (e.g., police patrolling) or in complex critical environments (e.g., airports).
机译:频谱细节表示是一种将细节集表示为固定长度特征向量的方法,该特征向量对于平移是不变的,并且旋转和缩放成为平移,因此可以轻松地对其进行补偿。这些特性使指纹识别系统与模板保护方案相结合,而模板保护方案要求输入固定长度的特征向量。基于频谱细节特征,本文介绍了两种特征约简算法:列主成分分析和线离散傅立叶变换特征约简,可有效压缩模板大小,缩减率为94%。通过减少功能,我们还可以实现基于细节的快速匹配算法。本文介绍了频谱细节指纹识别系统的性能,并显示了在具有2.80 GHz Intel Pentium D处理器和1 GB RAM的PC上以每秒125 000次比较的匹配速度。这种快速的操作使我们的系统适合作为大型指纹识别系统的预选器,从而大大减少了执行匹配的时间,尤其是在地理级别(例如,警察巡逻)或复杂关键环境(例如,机场)中运行的系统中)。

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