Indoor Panorama Planar 3D Reconstruction via Divide and Conquer
Cheng Sun, Chi-Wei Hsiao, Ning-Hsu Wang, Min Sun, Hwann-Tzong Chen
Abstract
Indoor panorama typically consists of human-made structures parallel or perpendicular to gravity. We leverage this phenomenon to approximate the scene in a 360-degree image with (H)orizontal-planes and (V)ertical-planes. To this end, we propose an effective divide-and-conquer strategy that divides pixels based on their plane orientation estimation; then, the succeeding instance segmentation module conquers the task of planes clustering more easily in each plane orientation group. Besides, parameters of V-planes depend on camera yaw rotation, but translation-invariant CNNs are less aware of the yaw change. We thus propose a yaw-invariant V-planar reparameterization for CNNs to learn. We create a benchmark for indoor panorama planar reconstruction by extending existing 360 depth datasets with ground truth H&V-planes (referred to as "PanoH&V" dataset) and adopt state-of-the-art planar reconstruction methods to predict H&V-planes as our baselines. Our method outperforms the baselines by a large margin on the proposed dataset. Code is available at https:// github.com/ sunset1995/ PanoPlane360.
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Install the CLIlune papers fulltext 427096ed-3d86-45a3-b7e7-fd36dee12e83Cited by top-tier papers3
- Depth Anywhere: Enhancing 360 Monocular Depth Estimation via Perspective Distillation and Unlabeled Data AugmentationNing-Hsu Wang, Yu-Lun LiuNeurIPS 2024 · 56 citations
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- ODGS: 3D Scene Reconstruction from Omnidirectional Images with 3D Gaussian SplattingsSuyoung Lee, Jaeyoung Chung, Jaeyoo Huh, Kyoung Mu LeeNeurIPS 2024 · 27 citations
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