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Hierarchical Multi-Branch Deepfake Detection Network (HMBDDN)

  • SUNY Buffalo

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

Abstract

Deepfake technology, which manipulates visual media, poses significant threats to content authenticity and security. This paper addresses these challenges by presenting a novel deepfake detection system designed to enhance detection accuracy, mitigate data imbalance, and improve generalization capabilities. Our approach encompasses multiple stages, including robust face detection, comprehensive feature extraction, effective data balancing, and precise classification, providing a holistic solution. Specifically, the system extracts intricate features from facial data and employs an advanced data balancing strategy to ensure equitable training across classes. A sophisticated discriminator model is then utilized to perform the final classification. The proposed method achieves high accuracy on the Celeb-DF v2 dataset, outperforming existing state-of-the-art (SOTA) deepfake detection models. These results demonstrate the robustness and effectiveness of our approach, contributing to more reliable detection of manipulated media and enhancing the integrity of digital content.

Original languageEnglish
Title of host publication2024 IEEE Western New York Image and Signal Processing Workshop, WNYISPW 2024
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331505554
DOIs
StatePublished - 2024
Event2024 IEEE Western New York Image and Signal Processing Workshop, WNYISPW 2024 - Rochester, United States
Duration: Nov 8 2024 → …

Publication series

Name2024 IEEE Western New York Image and Signal Processing Workshop, WNYISPW 2024

Conference

Conference2024 IEEE Western New York Image and Signal Processing Workshop, WNYISPW 2024
Country/TerritoryUnited States
CityRochester
Period11/8/24 → …

Keywords

  • Data Balancing
  • Deepfake Detection
  • Feature Learning
  • Multi-Branch Discriminator
  • SMOTE

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