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Achieving Anonymity against Major Face Recognition Algorithms

机译:针对主要的人脸识别算法实现匿名

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An ever-increasing number of personal photos is stored online. This trend can be problematic, because face recognition software can undermine user privacy in unexpected ways. Face de-identification aims to prevent automatic recognition of faces thus improving user privacy, but previous work alters the image in a way that makes them indistinguishable for both computers and humans, which prevents a wide-spread use. We propose a method for de-identification of images that effectively prevents face recognition software (using the most popular and effective algorithms) from identifying people, but still allows human recognition. We evaluate our method experimentally by adapting the CSU framework and using the FERET database. We show that we are able to achieve strong de-identification while maintaining reasonable image quality.
机译:在线存储越来越多的个人照片。这种趋势可能会带来问题,因为面部识别软件会以意想不到的方式破坏用户的隐私。人脸去识别的目的是防止自动识别人脸,从而改善用户隐私,但是先前的工作改变了图像,使它们对于计算机和人类都无法区分,从而阻止了广泛使用。我们提出了一种用于图像去识别的方法,该方法可以有效地防止人脸识别软件(使用最流行和有效的算法)来识别人,但仍然可以进行人为识别。我们通过适应CSU框架并使用FERET数据库对实验方法进行了实验评估。我们表明,在保持合理的图像质量的同时,我们能够实现强大的去识别。

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