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  4. Predicting positions of flipped bits in robust image hashes
 
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January 2023
Journal Article
Title

Predicting positions of flipped bits in robust image hashes

Abstract
Both robust and cryptographic hash methods have advantages and disadvantages. It would be ideal if robustness and cryptographic confidentiality could be combined. The problem here is that the concept of similarity of robust hashes cannot be applied to cryptographic hashes. Therefore, methods must be developed to reliably intercept the degrees of freedom of robust hashes before they are included in a cryptographic hash, but without losing their robustness. To achieve this, we need to predict the bits of a hash that are most likely to be modified, for example after a JPEG compression. We show that machine learning can be used to make a much more reliable prediction than the approaches previously discussed in the literature.
Author(s)
Hammann, Marius
TU Darmstadt  
Steinebach, Martin  
Fraunhofer-Institut für Sichere Informationstechnologie SIT  
Liu, Huajian  
Fraunhofer-Institut für Sichere Informationstechnologie SIT  
Bunzel, Niklas  
Fraunhofer-Institut für Sichere Informationstechnologie SIT  
Journal
Electronic imaging. Online journal  
Conference
International Symposium on Electronic Imaging 2023  
Media Watermarking, Security, and Forensics Conference 2023  
DOI
10.2352/EI.2023.35.4.MWSF-375
Language
English
Fraunhofer-Institut für Sichere Informationstechnologie SIT  
Keyword(s)
  • Robust Hashing

  • Cryptographic hashing

  • Privacy

  • Hybrid Hash

  • Machine Learning

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