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MSN: Multi-directional Similarity Network for Hand-crafted and Deep-synthesized Copy-Move Forgery Detection
This paper introduces the Multi-directional Similarity Network (MSN), a novel deep learning approach designed for accurate and efficient detection of copy-move image forgeries, including those created by both manual manipulation and advanced deep generative networks. It addresses limitations in existing deep detection models by improving feature representation and localization, while also presenting a new benchmark for deep-synthesized copy-move forgeries.