自动人脸识别可帮助解决低发生率的人脸身份不匹配问题,但可能会使用户产生偏差。

IF 3.2 2区 心理学 Q1 PSYCHOLOGY, MULTIDISCIPLINARY British journal of psychology Pub Date : 2024-11-15 DOI:10.1111/bjop.12745
Melina Mueller, Peter J B Hancock, Emily K Cunningham, Roger J Watt, Daniel Carragher, Anna K Bobak
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引用次数: 0

摘要

我们通过三个实验来研究向试图判断两张人脸图像是否显示同一个人的参与者提供有关自动人脸识别(AFR)系统决策信息的效果。我们做出了三项贡献,旨在使我们的结果适用于真实词语的使用:向参与者提供了高精度 AFR 系统的真实反应;人脸集反映了参与者来自伦敦市的混合种族;只有 10% 的不匹配。参与者在获得 AFR 系统的相似度得分或仅获得二进制决定时同样准确,但在仅获得二进制信息时,他们偏向于匹配,并且对困难的配对过于自信。没有人达到 AFR 系统 100%的准确率,他们对自己的表现也只有微弱的洞察力。
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Automated face recognition assists with low-prevalence face identity mismatches but can bias users.

We present three experiments to study the effects of giving information about the decision of an automated face recognition (AFR) system to participants attempting to decide whether two face images show the same person. We make three contributions designed to make our results applicable to real-word use: participants are given the true response of a highly accurate AFR system; the face set reflects the mixed ethnicity of the city of London from where participants are drawn; and there are only 10% of mismatches. Participants were equally accurate when given the similarity score of the AFR system or just the binary decision but shifted their bias towards match and were over-confident on difficult pairs when given only binary information. No participants achieved the 100% accuracy of the AFR system, and they had only weak insight about their own performance.

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来源期刊
British journal of psychology
British journal of psychology PSYCHOLOGY, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.50%
发文量
67
期刊介绍: The British Journal of Psychology publishes original research on all aspects of general psychology including cognition; health and clinical psychology; developmental, social and occupational psychology. For information on specific requirements, please view Notes for Contributors. We attract a large number of international submissions each year which make major contributions across the range of psychology.
期刊最新文献
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