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FAKETRACER: EXPOSING DEEPFAKES WITH TRAINING DATA CONTAMINATION

  • University of Chinese Academy of Sciences
  • Ocean University of China

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

17 Scopus citations

Abstract

We describe a proactive defense method to expose DeepFakes with training data contamination. Note that the existing methods usually focus on defending from general DeepFakes, which are synthesized by GAN using random noise. In contrast, our method is dedicated to defending from native DeepFakes, which is synthesized by auto-encoder that involves face swapping and encoding-decoding process that general DeepFakes do not have. Specifically, we design two types of traces namely sustainable traces and erasable traces, which are added on the faces to manipulate the training of DeepFake models. Consequently, the trained DeepFake model can synthesize faces with sustainable traces but no erasable traces. With the help of these two traces, we can expose DeepFakes proactively. Our method is compared with recent passive and proactive defense methods, which corroborates the efficacy of our method.

Original languageEnglish
Title of host publication2022 IEEE International Conference on Image Processing, ICIP 2022 - Proceedings
PublisherIEEE Computer Society
Pages1161-1165
Number of pages5
ISBN (Electronic)9781665496209
DOIs
StatePublished - 2022
Event29th IEEE International Conference on Image Processing, ICIP 2022 - Bordeaux, France
Duration: Oct 16 2022Oct 19 2022

Publication series

NameProceedings - International Conference on Image Processing, ICIP
ISSN (Print)1522-4880

Conference

Conference29th IEEE International Conference on Image Processing, ICIP 2022
Country/TerritoryFrance
CityBordeaux
Period10/16/2210/19/22

Keywords

  • AI Security
  • Multimedia Forensics
  • Proactively DeepFake Defense

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