Papers › Can we still avoid automatic face detection?

Can we still avoid automatic face detection?

14 Feb 2016arXiv:1602.04504archive 2025-07-28

Michael J. Wilber, Vitaly Shmatikov, Serge Belongie

After decades of study, automatic face detection and recognition systems are now accurate and widespread. Naturally, this means users who wish to avoid automatic recognition are becoming less able to do so. Where do we stand in this cat-and-mouse race? We currently live in a society where everyone carries a camera in their pocket. Many people willfully upload most or all of the pictures they take to social networks which invest heavily in automatic face recognition systems. In this setting, is it still possible for privacy-conscientious users to avoid automatic face detection and recognition? If so, how? Must evasion techniques be obvious to be effective, or are there still simple measures that users can use to protect themselves? In this work, we find ways to evade face detection on Facebook, a representative example of a popular social network that uses automatic face detection to enhance their service. We challenge widely-held beliefs about evading face detection: do our old techniques such as blurring the face region or wearing "privacy glasses" still work? We show that in general, state-of-the-art detectors can often find faces even if the subject wears occluding clothing or even if the uploader damages the photo to prevent faces from being detected.

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Eltomad/Tiny_Faces mentioned on GitHubtfMIT report
atom06/Tiny_Faces_in_Tensorflow_v2 mentioned on GitHubtfMIT report
clxiao/Tiny_Faces_in_Tensorflow mentioned on GitHubtfMIT report
cydonia999/Tiny_Faces_in_Tensorflow mentioned on GitHubtfMIT report
varununleashed/tiny_faces_temp mentioned on GitHubtfMIT report

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