Papers › Fighting Fake News: Image Splice Detection via Learned Self-Consistency

Fighting Fake News: Image Splice Detection via Learned Self-Consistency

10 May 2018ECCV 2018 9arXiv:1805.04096archive 2025-07-28

Minyoung Huh, Andrew Liu, Andrew Owens, Alexei A. Efros

Advances in photo editing and manipulation tools have made it significantly easier to create fake imagery. Learning to detect such manipulations, however, remains a challenging problem due to the lack of sufficient amounts of manipulated training data. In this paper, we propose a learning algorithm for detecting visual image manipulations that is trained only using a large dataset of real photographs. The algorithm uses the automatically recorded photo EXIF metadata as supervisory signal for training a model to determine whether an image is self-consistent -- that is, whether its content could have been produced by a single imaging pipeline. We apply this self-consistency model to the task of detecting and localizing image splices. The proposed method obtains state-of-the-art performance on several image forensics benchmarks, despite never seeing any manipulated images at training. That said, it is merely a step in the long quest for a truly general purpose visual forensics tool.

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get minyoungg/selfconsistency/lib/utils/util.py official repository unverified Apache-2.0 (permissive) · 0069e4691c451107 · report
initialize_exif minyoungg/selfconsistency/load_models.py official repository unverified Apache-2.0 (permissive) · 276dc7bf92922d96 · report
softmax minyoungg/selfconsistency/lib/utils/util.py official repository unverified Apache-2.0 (permissive) · 19daaab909243516 · report
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