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Bad Ai: Investigating the Effect of Half-Toning Techniques on Unwanted Face Detection Systems

机译:Bad Ai:研究半色调技术对不需要的人脸检测系统的影响

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Currently, automatic face detection systems are widely used in various social media. The improvement of the automated intelligent face recognition can easily result in the invasion of the user 's privacy if the predefined functions for their so- called artificial intelligent systems are designed with no respect to the user privacy, this means that users do not get the right to prevent these types of automatic face detection. The problem does not stop here, and recently some organization attempted to use automated face recognition system as a digital personal judgment tools. For instance, judging if a person is criminal only based on the attributes of his/her face. In the present technology, spreading the personal information such as individual digital images are fast and inevitable. Thus, in this paper, some of the techniques to evade automatic face recognition is investigated. The focused of this article is to highlight the advantages of different Half-Toning algorithms concerning avoiding unwanted automated face detection/recognition. In the experimental phase, the result of varying filtering and modification algorithms compared to the proposed filtering technique.
机译:当前,自动面部检测系统被广泛用于各种社交媒体中。如果针对其所谓的人工智能系统的预定义功能在设计时不考虑用户隐私,则自动智能人脸识别的改进很容易导致侵犯用户隐私。防止这些类型的自动面部检测的权利。问题并不仅限于此,最近一些组织尝试将自动面部识别系统用作数字个人判断工具。例如,仅基于他/她的脸的属性来判断一个人是否是罪犯。在本技术中,散布诸如单个数字图像之类的个人信息是快速且不可避免的。因此,在本文中,研究了一些规避自动人脸识别的技术。本文的重点是强调不同的Half-Toning算法在避免不必要的自动面部检测/识别方面的优势。在实验阶段,与所提出的过滤技术相比,变化的过滤和修改算法的结果。

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