Signature recognition: establishing human baseline performance via crowdsourcing

D. Morocho, A. Morales, Julian Fierrez, Rubén Tolosana
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引用次数: 9

Abstract

This work explores crowdsourcing for the establishment of human baseline performance on signature recognition. We present five experiments according to three different scenarios in which laymen, people without Forensic Document Examiner experience, have to decide about the authenticity of a given signature. The scenarios include single comparisons between one genuine sample and one unlabeled sample based on image, video or time sequences and comparisons with multiple training and test sets. The human performance obtained varies from 7% to 80% depending of the scenario and the results suggest the large potential of these collaborative platforms and encourage to further research on this area.
签名识别:通过众包建立人类基准性能
这项工作探讨了在签名识别中建立人类基线性能的众包。我们根据三种不同的场景提出了五个实验,在这些场景中,外行人,没有法医文件审查员经验的人,必须决定给定签名的真实性。这些场景包括基于图像、视频或时间序列的真实样本和未标记样本之间的单一比较,以及与多个训练和测试集的比较。根据不同的场景,人类的表现从7%到80%不等,结果表明这些协作平台具有巨大的潜力,并鼓励进一步研究这一领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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