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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Nonparametric analysis of fingerprint data on large data sets
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Nonparametric analysis of fingerprint data on large data sets

机译:大型数据集上指纹数据的非参数分析

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摘要

By executing different fingerprint-image matching algorithms on large data sets, it reveals that the match and non-match similarity scores have no specific underlying distribution function. Thus, it requires a nonparametric analysis for fingerprint-image matching algorithms on large data sets without any assumption about such irregularly discrete distribution functions. A precise receiver operating characteristic (ROC) curve based on the true accept rate (TAR) of the match similarity scores and the false accept rate (FAR) of the non-match similarity scores can be constructed. The area under such an ROC curve computed using the trapezoidal rule is equivalent to the Mann-Whitney statistic directly formed from the match and non-match similarity scores. Thereafter, the Z statistic formulated using the areas under ROC curves along with their variances and the correlation coefficient is applied to test the significance of the difference between two ROC curves. Four examples from the extensive testing of commercial fingerprint systems at the National Institute of Standards and Technology are provided. The Donparametric approach presented in this article can also be employed in the analysis of other large biometric data sets. (c) 2006 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:通过对大型数据集执行不同的指纹图像匹配算法,可以揭示匹配和非匹配相似性分数没有特定的基础分布函数。因此,它需要对大数据集上的指纹图像匹配算法进行非参数分析,而无需对此类不规则离散分布函数进行任何假设。可以基于匹配相似性得分的真实接受率(TAR)和非匹配相似性得分的错误接受率(FAR)构建精确的接收器工作特性(ROC)曲线。使用梯形法则计算出的这种ROC曲线下的面积等于直接由匹配和不匹配相似性评分形成的Mann-Whitney统计量。此后,使用ROC曲线下的面积及其方差和相关系数制定的Z统计量将用于检验两条ROC曲线之间差异的显着性。提供了来自美国国家标准技术研究院对商用指纹系统进行广泛测试的四个示例。本文介绍的Donparametric方法也可以用于分析其他大型生物特征数据集。 (c)2006模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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