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Scene Prior Filtering for Depth Super-Resolution

About

Multi-modal fusion serves as a cornerstone for successful depth map super-resolution. However, commonly used fusion strategies, such as addition and concatenation, fall short of effectively bridging the modal gap. As a result, guided image filtering methods have been introduced to mitigate this issue. Nevertheless, it is observed that their filter kernels usually encounter significant texture interference and edge inaccuracy. To tackle these two challenges, we introduce a Scene Prior Filtering network, SPFNet, which utilizes the priors' surface normal and semantic map from large-scale models. Specifically, we propose an All-in-one Prior Propagation that computes similarity between multi-modal scene priors, i.e., RGB, normal, semantic, and depth, to reduce the texture interference. Besides, we design a One-to-one Prior Embedding that continuously embeds every single modal prior into depth using Mutual Guided Filtering, further alleviating texture interference while enhancing edge representations. Our SPFNet has been extensively evaluated on both real-world and synthetic datasets, achieving state-of-the-art performance.

Zhengxue Wang, Zhiqiang Yan, Ming-Hsuan Yang, Jinshan Pan, Guangwei Gao, Ying Tai, Jian Yang• 2024

Related benchmarks

TaskDatasetResultRank
Depth Super-ResolutionNYU v2 (test)
RMSE8.06
136
Joint Depth Super-Resolution and DenoisingNYU v2 (test)
RMSE5.14
78
Depth Map Super-ResolutionRGB-D-D (test)
RMSE3.97
42
Saliency map super-resolutionDUT-OMRON
F-score99.67
26
Pan-sharpeningGaoFen2
PSNR47.4818
21
Depth Super-ResolutionNYU Bicubic downsampling synthetic v2 (test)
RMSE (x4)1.09
20
Depth Super-ResolutionMiddlebury Bicubic downsampling synthetic (test)
RMSE (x4)1.04
20
Depth Super-ResolutionLu Bicubic downsampling synthetic (test)
RMSE (x4)0.8
20
Depth Super-ResolutionRGB-D-D Bicubic downsampling synthetic (test)
RMSE (4x)1.12
19
Depth Super-ResolutionNYU Nearest-neighbor downsampling synthetic v2 (test)
RMSE (x4)1.92
17
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