Layout-Guided Novel View Synthesis From a Single Indoor Panorama
Jiale Xu, Jia Zheng, Yanyu Xu, Rui Tang, Shenghua Gao
摘要
Existing view synthesis methods mainly focus on the perspective images and have shown promising results. However, due to the limited field-of-view of the pinhole camera, the performance quickly degrades when large camera movements are adopted. In this paper, we make the first attempt to generate novel views from a single indoor panorama and take the large camera translations into consideration. To tackle this challenging problem, we first use Convolutional Neural Networks (CNNs) to extract the deep features and estimate the depth map from the source-view image. Then, we leverage the room layout prior, a strong structural constraint of the indoor scene, to guide the generation of target views. More concretely, we estimate the room layout in the source view and transform it into the target viewpoint as guidance. Meanwhile, we also constrain the room layout of the generated target-view images to enforce geometric consistency. To validate the effectiveness of our method, we further build a large-scale photorealistic dataset containing both small and large camera translations. The experimental results on our challenging dataset demonstrate that our method achieves stateof-the-art performance. The project page is at https: //github.com/bluestyle97/PNVS .
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引用它的顶会 Paper6
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- Taming Stable Diffusion for Text to 360° Panorama Image GenerationCheng Zhang, Qianyi Wu, Camilo Cruz Gambardella, Xiaoshui Huang 等CVPR 2024 · 被引用 27 次
- HORIZON: High-Resolution Semantically Controlled Panorama SynthesisKun Yan, Lei Ji, Chenfei Wu, Jian Liang 等AAAI 2024 · 被引用 3 次
- SO(3)-Equivariant ViT-Adapter for Data-Efficient Zero-Shot Sim-to-Real Indoor Panoramic Depth EstimationZiyan He, Qiudan Zhang, Lin Ma, Xu WangCVPR 2026
- Look Beyond: Two-Stage Scene View Generation via Panorama and Video DiffusionXueyang Kang, Zhengkang Xiang, Zezheng Zhang, Kourosh KhoshelhamACM MM 2025
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