Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/121065
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Title: Common inpainted objects In-N-Out of context
Authors: Yang, T
Jordan, T
Sun, R
Liu, N 
Sun, J
Issue Date: 2026
Source: The IEEE/CVF Conference on Computer Vision and Pattern Recognition 2026, June 3 - Sun June 7, 2026, Colorado Convention Center, https://openaccess.thecvf.com/content/CVPR2026/html/Yang_Common_Inpainted_Objects_In-N-Out_of_Context_CVPR_2026_paper.html
Abstract: We present Common Inpainted Objects In-N-Out of Context (COinCO), a novel dataset addressing the scarcity of out-of-context examples in existing vision datasets. By systematically replacing objects in COCO images through diffusion-based inpainting, we create 97,722 unique images featuring both contextually coherent and inconsistent scenes, enabling effective context learning. Each inpainted object is meticulously verified and categorized as in- or out-of-context through Large Vision Language Model assessments. Our analysis reveals significant patterns in semantic priors that influence inpainting success across object categories. We demonstrate three key tasks enabled by COinCO: (1) developing a fine-grained context reasoning approach that classifies objects as in- or out-of-context based on three criteria; (2) a novel Objects-from-Context prediction task that determines which new objects naturally belong in given scenes at both instance and clique levels, and (3) context-enhanced fake detection on state-of-the-art methods without fine-tuning. COinCO provides a controlled testbed with contextual variations, establishing a foundation for advancing context-aware visual understanding in computer vision and image forensics.
Description: The IEEE/CVF Conference on Computer Vision and Pattern Recognition 2026, June 3 - Sun June 7, 2026, Colorado Convention Center
Appears in Collections:Conference Paper

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