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GarmentZoom: Generating Zoomable Images from Garment Listings

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Online product listings for garments often include an overview photo and a close-up to show garment details. However, each photo focuses on either field of view or garment detail, forcing users to alternate between views and breaking browsing continuity. We present GarmentZoom, a system that enhances the full-view photo to match the fidelity of its accompanying close-up, enabling seamless zoom-and-pan exploration. Unlike standard reference-based super-resolution, our setting involves close-up references that are spatially unaligned with the full view, and scale factors that vary substantially across garments 3-20$\times$. Prior work typically relies on alignment to transfer details or requires per-instance fine-tuning to memorize them. Instead, we train a single model that supports a continuous range of scales across diverse garments. Our approach synthesizes details without requiring spatial alignment and matches the quality of per-instance methods with a fraction of the training cost.

Renjie Zhao, Jingwei Ma, Huy Huynh Cao, Brian Curless, Steven M. Seitz, Ira Kemelmacher-Shlizerman• 2026

Related benchmarks

TaskDatasetResultRank
Reference-based Super-ResolutionGarment dataset 4x
LPIPS0.117
8
Reference-based Super-ResolutionGarment dataset 10x
LPIPS0.164
8
Reference-based Image Super-ResolutionGarment Listings synthetic low-resolution
LPIPS0.199
2
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