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A Support Vector Machine Approach for Truncated Fingerprint Image Detection from Sweeping Fingerprint Sensors

机译:基于支持向量机的扫频指纹传感器截断指纹图像检测

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A sweeping fingerprint sensor converts fingerprints on a row by row basis through image reconstruction techniques. However, a built fingerprint image might appear to be truncated and distorted when the finger was swept across a fingerprint sensor at a non-linear speed. If the truncated fingerprint images were enrolled as reference targets and collected by any automated fingerprint identification system (AFIS), successful prediction rates for fingerprint matching applications would be decreased significantly. In this paper, a novel and effective methodology with low time computational complexity was developed for detecting truncated fingerprints in a real time manner. Several filtering rules were implemented to validate existences of truncated fingerprints. In addition, a machine learning method of supported vector machine (SVM), based on the principle of structural risk minimization, was applied to reject pseudo truncated fingerprints containing similar characteristics of truncated ones. The experimental result has shown that an accuracy rate of 90.7% was achieved by successfully identifying truncated fingerprint images from testing images before AFIS enrollment procedures. The proposed effective and efficient methodology can be extensively applied to all existing fingerprint matching systems as a preliminary quality control prior to construction of fingerprint templates.
机译:扫描指纹传感器通过图像重建技术逐行转换指纹。但是,当手指以非线性速度扫过指纹传感器时,构建的指纹图像可能会被截断和扭曲。如果将截断的指纹图像作为参考目标并通过任何自动指纹识别系统(AFIS)进行收集,则指纹匹配应用程序的成功预测率将大大降低。本文提出了一种新颖,有效的方法,具有较低的计算时间复杂度,可以实时检测被截断的指纹。实施了几种过滤规则以验证截短指纹的存在。此外,基于结构风险最小化的原理,将支持向量机(SVM)的机器学习方法应用于拒绝包含相似截短特征的伪截短指纹。实验结果表明,通过在AFIS注册程序之前从测试图像中成功识别出截断的指纹图像,可以达到90.7%的准确率。所提出的有效和高效的方法可以广泛地应用于所有现有的指纹匹配系统,作为构建指纹模板之前的初步质量控制。

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