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Benchmarking contactless acquisition sensor reproducibility for latent fingerprint trace evidence

机译:标定非接触式采集传感器的可重复性,以获取潜在的指纹痕迹证据

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Optical, nanometer range, contactless, non-destructive sensor devices are promising acquisition techniques in crime scene trace forensics, e.g. for digitizing latent fingerprint traces. Before new approaches are introduced in crime investigations, innovations need to be positively tested and quality ensured. In this paper we investigate sensor reproducibility by studying different scans from four sensors: two chromatic white light sensors (CWL600/CWL1mm), one confocal laser scanning microscope, and one NIR/VIS/UV reflection spectrometer. Firstly, we perform an intra-sensor reproducibility testing for CWL600 with a privacy conform test set of artificial-sweat printed, computer generated fingerprints. We use 24 different fingerprint patterns as original samples (printing samples/templates) for printing with artificial sweat (physical trace samples) and their acquisition with contactless sensory resulting in 96 sensor images, called scan or acquired samples. The second test set for inter-sensor reproducibility assessment consists of the first three patterns from the first test set, acquired in two consecutive scans using each device. We suggest using a simple feature space set in spatial and frequency domain known from signal processing and test its suitability for six different classifiers classifying scan data into small differences (reproducible) and large differences (non-reproducible). Furthermore, we suggest comparing the classification results with biometric verification scores (calculated with NBIS, with threshold of 40) as biometric reproducibility score. The Bagging classifier is nearly for all cases the most reliable classifier in our experiments and the results are also confirmed with the biometric matching rates.
机译:光学,纳米范围,非接触式,非破坏性传感器设备是犯罪现场痕迹取证的有前途的采集技术,例如用于数字化潜在的指纹痕迹。在将新方法引入犯罪调查之前,必须对创新进行积极的测试并确保质量。在本文中,我们通过研究来自四个传感器的不同扫描来研究传感器的可重复性:两个彩色白光传感器(CWL600 / CWL1mm),一个共聚焦激光扫描显微镜和一个NIR / VIS / UV反射光谱仪。首先,我们对CWL600进行了传感器内重现性测试,并使用了由人造汗水印刷的计算机生成的指纹进行隐私保护的测试套件。我们使用24种不同的指纹图案作为原始样本(打印样本/模板),以人工汗液(物理痕迹样本)进行打印,并以非接触式感觉进行采集,从而产生96个传感器图像,称为扫描样本或采集样本。用于传感器间可重复性评估的第二个测试集由第一个测试集的前三个模式组成,这些模式是使用每个设备通过两次连续扫描获得的。我们建议使用信号处理已知的空间和频域中的简单特征空间集,并测试其是否适用于将扫描数据分为小差异(可重现)和大差异(不可重现)的六个不同分类器。此外,我们建议将分类结果与生物特征验证分数(用NBIS计算,阈值为40)进行比较,以作为生物特征再现性分数。 Bagging分类器几乎是所有情况下我们实验中最可靠的分类器,其结果也通过生物特征匹配率得到了证实。

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