Predictive Quality Assessment for Mobile Secure Graphics
| Authors |
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| Publication date | 2025 |
| Book title | 2025 IEEE/CVF Conference on Computer Vision Workshops : ICCV-W 2025 |
| Book subtitle | 19-20 October 2025, Honolulu, United States : proceedings |
| ISBN |
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| ISBN (electronic) |
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| Event | 2025 IEEE/CVF Conference on Computer Vision Workshops |
| Pages (from-to) | 4013-4022 |
| Number of pages | 10 |
| Publisher | Los Alamitos, California: IEEE Computer Society |
| Organisations |
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| Abstract |
The reliability of secure graphic verification, a key anti-counterfeiting tool, is undermined by poor image acquisition on smartphones. Uncontrolled user captures of these high-entropy patterns cause high false rejection rates, creating a significant `reliability gap'. To bridge this gap, we depart from traditional perceptual IQA and introduce a framework that predictively estimates a frame's utility for the downstream verification task. We propose a lightweight model to predict a quality score for a video frame, determining its suitability for a resource-intensive oracle model. Our framework is validated using re-contextualized FNMR and ISRR metrics on a large-scale dataset of 32,000+ images from 105 smartphones. Furthermore, a novel cross-domain analysis on graphics from different industrial printing presses reveals a key finding: a lightweight probe on a frozen, ImageNet-pretrained network generalizes better to an unseen printing technology than a fully fine-tuned model. This provides a key insight for real-world generalization: for domain shifts from physical manufacturing, a frozen general-purpose backbone can be more robust than full fine-tuning, which can overfit to source-domain artifacts.
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| Document type | Conference contribution |
| Note | With supplemental file |
| Language | English |
| Published at |
https://doi.org/10.48550/arXiv.2509.20028
(Accepted author manuscript)
https://doi.org/10.1109/ICCVW69036.2025.00417
(Final published version)
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| Published at | |
| Downloads |
Steigstra_Predictive_Quality_Assessment_for_Mobile_Secure_Graphics_ICCVW_2025_paper
(Accepted author manuscript)
Predictive_Quality_Assessment_for_Mobile_Secure_Graphics
(Final published version)
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| Supplementary materials | |
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