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READFake: Reflection and Environment-Aware DeepFake Detection

  • Muhammad Mohzary
  • , Elham Basunduwah
  • , Sejun Song
  • , Baek Young Choi

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

This paper presents a novel Reflection and Environment-Aware DeepFake (READFake) detection technique. Using reflections on various body parts (e.g., eyes, nose, cheeks, etc.) and environmental factors, we validate the hypothesis that the existing DeepFake creation methods, including reenactment, replacement, and synthesis, fail to coordinate their counterfeits with the reflective components along with the given environmental mapping. We detect various features from the specular highlight images, including color components, shapes, and textures, to check the coordination with the surrounding environmental factors, such as indoor/outdoor, bright/dark backgrounds, and light strength. We have conducted extensive experiments to evaluate the performance of READFake using various input parameters and advanced Deep Neural Network (DNN) architectures on multiple public DeepFake datasets. The empirical results show that READFake achieves high accuracy (99.00%) in detecting sophisticated DeepFake images.

Original languageEnglish (US)
Title of host publication2024 IEEE International Conference on Visual Communications and Image Processing, VCIP 2024
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331529543
DOIs
StatePublished - 2024
Event2024 IEEE International Conference on Visual Communications and Image Processing, VCIP 2024 - Tokyo, Japan
Duration: Dec 8 2024Dec 11 2024

Publication series

Name2024 IEEE International Conference on Visual Communications and Image Processing, VCIP 2024

Conference

Conference2024 IEEE International Conference on Visual Communications and Image Processing, VCIP 2024
Country/TerritoryJapan
CityTokyo
Period12/8/2412/11/24

Keywords

  • DNN
  • DeepFake Detection
  • Specular Highlights

ASJC Scopus subject areas

  • Computer Networks and Communications
  • Computer Vision and Pattern Recognition
  • Hardware and Architecture
  • Signal Processing
  • Media Technology

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