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Splicing Detection and Localization in Satellite Imagery Using Conditional GANs

Proceedings - 2nd International Conference on Multimedia Information Processing and Retrieval, MIPR 2019, Page: 91-96
2019
  • 37
    Citations
  • 0
    Usage
  • 34
    Captures
  • 0
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    37
    • Citation Indexes
      37
  • Captures
    34

Conference Paper Description

The widespread availability of image editing tools and improvements in image processing techniques allow image manipulation to be very easy. Oftentimes, easy-to-use yet sophisticated image manipulation tools yields distortions/changes imperceptible to the human observer. Distribution of forged images can have drastic ramifications, especially when coupled with the speed and vastness of the Internet. Therefore, verifying image integrity poses an immense and important challenge to the digital forensic community. Satellite images specifically can be modified in a number of ways, including the insertion of objects to hide existing scenes and structures. In this paper, we describe the use of a Conditional Generative Adversarial Network (cGAN) to identify the presence of such spliced forgeries within satellite images. Additionally, we identify their locations and shapes. Trained on pristine and falsified images, our method achieves high success on these detection and localization objectives.

Bibliographic Details

Emily R. Bartusiak; Sri Kalyan Yarlagadda; David Guera; Paolo Bestagini; Edward J. Delp; Stefano Tubaro; Fengqing M. Zhu

Institute of Electrical and Electronics Engineers (IEEE)

Computer Science; Engineering

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