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ARTiFACIAL: Automated Reverse Turing test using FACIAL features

机译:人工工具:使用FACIAL功能进行自动反向图灵测试

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摘要

Web services designed for human users are being abused by computer programs (bots). The bots steal thousands of free e-mail accounts in a minute, participate in online polls to skew results, and irritate people by joining online chat rooms. These real-world issues have recently generated a new research area called human interactive proofs (HIP), whose goal is to defend services from malicious attacks by differentiating bots from human users. In this paper, we make two major contributions to HIP. First, based on both theoretical and practical considerations, we propose a set of HIP design guidelines that ensure a HIP system to be secure and usable. Second, we propose a new HIP algorithm based on detecting human face and facial features. Human faces are the most familiar object to humans, rendering it possibly the best candidate for HIP. We conducted user studies and showed the ease of use of our system to human users. We designed attacks using the best existing face detectors and demonstrated the challenge they presented to bots.
机译:为人类用户设计的Web服务正被计算机程序(机器人)滥用。这些漫游器在一分钟内窃取了数千个免费电子邮件帐户,参加在线民意调查以歪曲结果,并通过加入在线聊天室来激怒人们。这些现实世界的问题最近产生了一个新的研究领域,称为人机交互证明(HIP),其目的是通过区分机器人与人类用户来保护服务免受恶意攻击。在本文中,我们对HIP做出了两个主要贡献。首先,基于理论和实践考虑,我们提出了一套HIP设计指南,以确保HIP系统安全可靠。其次,我们提出了一种新的基于人脸和面部特征检测的HIP算法。人脸是人类最熟悉的对象,因此可能是HIP的最佳人选。我们进行了用户研究,并向人类用户展示了我们系统的易用性。我们使用现有最好的面部检测器设计了攻击,并演示了它们对机器人的挑战。

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