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IMDPrompter: Adapting SAM to Image Manipulation Detection by Cross-View Automated Prompt Learning

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Using extensive training data from SA-1B, the Segment Anything Model (SAM) has demonstrated exceptional generalization and zero-shot capabilities, attracting widespread attention in areas such as medical image segmentation and remote sensing image segmentation. However, its performance in the field of image manipulation detection remains largely unexplored and unconfirmed. There are two main challenges in applying SAM to image manipulation detection: a) reliance on manual prompts, and b) the difficulty of single-view information in supporting cross-dataset generalization. To address these challenges, we develops a cross-view prompt learning paradigm called IMDPrompter based on SAM. Benefiting from the design of automated prompts, IMDPrompter no longer relies on manual guidance, enabling automated detection and localization. Additionally, we propose components such as Cross-view Feature Perception, Optimal Prompt Selection, and Cross-View Prompt Consistency, which facilitate cross-view perceptual learning and guide SAM to generate accurate masks. Extensive experimental results from five datasets (CASIA, Columbia, Coverage, IMD2020, and NIST16) validate the effectiveness of our proposed method.

Quan Zhang, Yuxin Qi, Xi Tang, Jinwei Fang, Xi Lin, Ke Zhang, Chun Yuan• 2025

Related benchmarks

TaskDatasetResultRank
Image Forgery LocalizationColumbia Unseen Domain
mIoU22.9
30
Image Forgery LocalizationCASIA v1
Pixel-level AUC46.1
20
Image Forgery LocalizationColumbia
DSC33.9
15
Image Forgery LocalizationIn the Wild Unseen Domain
mIoU23.4
15
Image Forgery Localizationin the wild
DSC33.7
15
Image Forgery LocalizationIMD 2020
DSC28
15
Image Forgery LocalizationCoMoFoD
DSC23
15
Image Forgery LocalizationCASIA Unseen Domain v1
mIoU37.9
15
Image Forgery LocalizationIMD Unseen Domain 2020
mIoU19.7
15
Image Forgery LocalizationDIS25k Unseen Domain
mIoU21.3
15
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