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Fingerprint classification based on decision tree from singular points and orientation field

机译:基于奇异点和方向域的决策树指纹分类

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摘要

In this study, a high accuracy fingerprint classification method is proposed to enhance the performance in terms of efficiency for fingerprint recognition system. The recognition system has been considered as a reliable mechanism for criminal identification and forensic for its invariance property, yet the huge database is the key issue to make the system obtuse. In former works, the pre-classifying manner is an effective way to speed up the process, yet the accuracy of the classification dominates the further recognition rate and processing speed. In this paper, a rule-based fingerprint classification method is proposed, wherein the two features, including the types of singular points and the number of each type of point are adopted to distinguish different fingerprints. Moreover, when fingerprints are indistinguishable, the proposed Center-to-Delta Flow (CDF) and Balance Arm Flow (BAF) are catered for further classification. As documented in the experimental results, a good accuracy rate can be achieved, which endorses the effectiveness of the fingerprint classification scheme for the further fingerprint recognition system.
机译:在这项研究中,提出了一种高精度的指纹分类方法,以提高指纹识别系统的效率。识别系统已被认为是一种可靠的刑事鉴定机制,并且具有不变性,因此已被司法鉴定,然而庞大的数据库却是使该系统变得晦涩的关键问题。在以前的作品中,预分类方法是加快处理速度的有效方法,但分类的准确性支配着进一步的识别率和处理速度。本文提出了一种基于规则的指纹分类方法,其中采用了奇异点类型和每种类型的点数两个特征来区分不同的指纹。此外,当指纹无法区分时,建议的中心到三角洲流量(CDF)和平衡臂流量(BAF)可以满足进一步分类的需要。如实验结果所示,可以实现良好的准确率,这证明了指纹分类方案对于进一步的指纹识别系统的有效性。

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