MDP-Omni: Parameter-Free Multimodal Depth Prior-Based Sampling for Omnidirectional Stereo Matching
Eunjin Son, HyungGi Jo, Wookyong Kwon, Sang Jun Lee
摘要
Omnidirectional stereo matching (OSM) estimates 360 • depth by performing stereo matching on multi-view fisheye images. Existing methods assume a unimodal depth distribution, matching each pixel to a single object. However, this assumption constrains the sampling range, causing oversmoothed depth artifacts, especially at object boundaries. To address these limitations, we propose MDP-Omni, a novel OSM network that leverages parameter-free multimodal depth priors. Specifically, we design a sampling strategy that adaptively adjusts the sampling range based on a multimodal probability distribution, without introducing any additional parameters. Furthermore, we present the azimuth-based multi-view volume fusion module to build a single cost volume. It mitigates false matches caused by occlusions in warped multi-view volumes. Experimental results demonstrate that MDP-Omni significantly improves existing methods, particularly in capturing fine details.
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- Rethinking Depth Estimation for Multi-View Stereo: A Unified RepresentationRui Peng, Rongjie Wang, Zhenyu Wang, Yawen Lai 等CVPR 2022 · 被引用 159 次
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- OmniMVS: End-to-End Learning for Omnidirectional Stereo MatchingChanghee Won, Jongbin Ryu, Jongwoo LimICCV 2019 · 被引用 61 次
- Non-parametric Depth Distribution Modelling based Depth Inference for Multi-view StereoJiayu Yang, José M. Álvarez, Miaomiao LiuCVPR 2022 · 被引用 39 次
- GoMVS: Geometrically Consistent Cost Aggregation for Multi-View StereoJiang Wu, Rui Li, Haofei Xu, Wenxun Zhao 等CVPR 2024 · 被引用 34 次
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