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DM$^3$Net: Dual-Camera Super-Resolution via Domain Modulation and Multi-scale Matching

DM$^3$Net: Dual-Camera Super-Resolution via Domain Modulation and Multi-scale Matching

来源:Arxiv_logoArxiv
英文摘要

Dual-camera super-resolution is highly practical for smartphone photography that primarily super-resolve the wide-angle images using the telephoto image as a reference. In this paper, we propose DM$^3$Net, a novel dual-camera super-resolution network based on Domain Modulation and Multi-scale Matching. To bridge the domain gap between the high-resolution domain and the degraded domain, we learn two compressed global representations from image pairs corresponding to the two domains. To enable reliable transfer of high-frequency structural details from the reference image, we design a multi-scale matching module that conducts patch-level feature matching and retrieval across multiple receptive fields to improve matching accuracy and robustness. Moreover, we also introduce Key Pruning to achieve a significant reduction in memory usage and inference time with little model performance sacrificed. Experimental results on three real-world datasets demonstrate that our DM$^3$Net outperforms the state-of-the-art approaches.

Cong Guan、Jiacheng Ying、Yuya Ieiri、Osamu Yoshie

计算技术、计算机技术

Cong Guan,Jiacheng Ying,Yuya Ieiri,Osamu Yoshie.DM$^3$Net: Dual-Camera Super-Resolution via Domain Modulation and Multi-scale Matching[EB/OL].(2025-06-08)[2025-06-18].https://arxiv.org/abs/2506.06993.点此复制

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