论文标题

分析人类观察者在变形攻击检测中的能力 - 我们站在哪里?

Analyzing Human Observer Ability in Morphing Attack Detection -- Where Do We Stand?

论文作者

Godage, Sankini Rancha, Løvåsdal, Frøy, Venkatesh, Sushma, Raja, Kiran, Ramachandra, Raghavendra, Busch, Christoph

论文摘要

很少有研究重点是研究人们如何识别变形攻击,即使有几个出版物已经检查了自动化FRS的敏感性并提供了变形攻击检测(MAD)方法。疯狂的方法将他们的决策基于单个图像,而没有参考以比较(S-MAD)或使用参考图像(D-MAD)。一个普遍的误解是,审查员或观察者的面部形态检测能力取决于他们的主题专业知识,经验和对这个问题的熟悉程度,并且没有任何作品报告了经常验证身份(ID)文档的观察者的具体结果。当人类观察者参与检查具有面部图像的ID文件时,其能力的失误可能会面临重大的社会挑战。为了评估观察者的熟练程度,这项工作首先构建了来自48位不同受试者的现实变形攻击的新基准数据库,从而产生了400个变形图像。我们还捕获了从自动边界控制(ABC)门的图像,以模仿D-MAD设置中现实的边界跨场景,并使用400个探针图像研究人类观察者检测变形图像的能力。还生产了一个新的180个变形图像的数据集,以研究S-MAD环境中的人类能力。除了创建一个新的评估平台来进行S-MAD和D-MAD分析外,该研究还为D-MAD雇用了469位观察员,而S-MAD的410名观察员则主要是来自40多个国家 /地区的政府雇员,以及103名不是审查员的受试者。该分析提供了有趣的见解,并突出了缺乏专业知识和未能认识到专家大量变形攻击的缺乏。这项研究的结果旨在帮助制定培训计划,以防止安全失败,同时确定图像是真正的还是改变的。

Few studies have focused on examining how people recognize morphing attacks, even as several publications have examined the susceptibility of automated FRS and offered morphing attack detection (MAD) approaches. MAD approaches base their decisions either on a single image with no reference to compare against (S-MAD) or using a reference image (D-MAD). One prevalent misconception is that an examiner's or observer's capacity for facial morph detection depends on their subject expertise, experience, and familiarity with the issue and that no works have reported the specific results of observers who regularly verify identity (ID) documents for their jobs. As human observers are involved in checking the ID documents having facial images, a lapse in their competence can have significant societal challenges. To assess the observers' proficiency, this work first builds a new benchmark database of realistic morphing attacks from 48 different subjects, resulting in 400 morphed images. We also capture images from Automated Border Control (ABC) gates to mimic the realistic border-crossing scenarios in the D-MAD setting with 400 probe images to study the ability of human observers to detect morphed images. A new dataset of 180 morphing images is also produced to research human capacity in the S-MAD environment. In addition to creating a new evaluation platform to conduct S-MAD and D-MAD analysis, the study employs 469 observers for D-MAD and 410 observers for S-MAD who are primarily governmental employees from more than 40 countries, along with 103 subjects who are not examiners. The analysis offers intriguing insights and highlights the lack of expertise and failure to recognize a sizable number of morphing attacks by experts. The results of this study are intended to aid in the development of training programs to prevent security failures while determining whether an image is bona fide or altered.

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