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A survey on minutiae-based palmprint feature representations, and a full analysis of palmprint feature representation role in latent identification performance

机译:基于Minutiae的Palmprint特征表示的调查,对潜在识别性能的完整分析掌上特征表示作用

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摘要

Latent palmprint identification is a crucial element for both law enforcement and integrated automated fingerprint identification systems because approximately 30% of the imprints found in a crime scene originate from a human's palms. To find the person whom the palmprint belongs to, forensic experts use systems that automatically compare the imprints found, called latent, against thousands of potential palmprints.Identification systems rely on features obtained from the palmprint, and different feature representations to include discriminative information. However, there is no consensus as to which representation allows for a better matching between latent palmprints, and those with a known identity. Furthermore, evaluating the identification performance when matching palmprints obtained when using different representations has not been done fairly. The current manner of evaluating palmprint identification methods uses different datasets, performance measures, and does not allow to discern the contributions of the feature representation and the methods for matching the palmprints. In this study, we have reviewed those features used for latent palmprint identification, and also we propose an evaluation methodology that allows for a fair comparison of minutiae-based features.Using our methodology, we evaluated each representation performing more than 5 billion comparisons. Our experiments are done using a dataset that includes information about the matching minutiae according to an expert. We aim with our results to provide a baseline for new research in latent palmprint identification feature representations, allowing for a fair comparison of newly developed representations in the future, which would enhance the whole latent palmprint identification methods. For this purpose, we also publicly provide our dataset, methodology implementation, and the feature representations implementation tested in our experiments. (C) 2019 The Authors. Published by Elsevier Ltd.
机译:潜在的掌纹识别是法律执法和综合自动指纹识别系统的关键因素,因为犯罪现场中的大约30%的印记源于人类的手掌。为了找到PalmPrint所属的人,法医专家使用自动比较所发现的印记的系统,以达到数千次潜在的掌纹。依赖于从Palmprint获得的特征,以及不同的特征表示来包括歧视信息。但是,与哪些表示允许在潜像掌纹之间允许更好的匹配的共识,以及具有已知身份的人。此外,在使用不同表示时匹配的匹配匹配的掌纹时评估识别性能。评估PalmPrint识别方法的当前方式使用不同的数据集,性能测量,并且不允许辨别特征表示的贡献和用于匹配掌纹的方法。在这项研究中,我们已经审查了那些用于潜在掌上型识别的特征,以及我们提出了一种评估方法,允许基于细节的特征进行公平比较。我们的方法论,我们评估了每次表现出超过5亿比较的比较。我们的实验是使用数据集完成的,该数据集包括根据专家的有关匹配细节的信息。我们的目标是我们的结果为潜在掌上识别特征表示提供了新的研究基准,允许将来的新开发的表示公平比较,这将增强整个潜在的人掌识别方法。为此,我们还公开提供我们的数据集,方法实现以及在我们的实验中测试的特征表示。 (c)2019年作者。 elsevier有限公司出版

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  • 来源
    《Expert systems with applications》 |2019年第10期|30-44|共15页
  • 作者单位

    Tecnol Monterrey Sch Sci & Engn Ave Carlos Lazo 100 Mexico City 01389 DF Mexico;

    Tecnol Monterrey Sch Sci & Engn Carretera Lago Guadalupe Km 3-5 Atizapan De Zaragoza 52926 Estado De Mexic Mexico;

    Tecnol Monterrey Sch Sci & Engn Carretera Lago Guadalupe Km 3-5 Atizapan De Zaragoza 52926 Estado De Mexic Mexico;

    Tecnol Monterrey Sch Sci & Engn Via Atlixcayotl 2301 Puebla 72453 Mexico;

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