Generative View Synthesis: From Single-view Semantics to Novel-view Images
Tewodros Amberbir Habtegebrial, Varun Jampani, Orazio Gallo, Didier Stricker
摘要
Content creation, central to applications such as virtual reality, can be a tedious and time-consuming. Recent image synthesis methods simplify this task by offering tools to generate new views from as little as a single input image, or by converting a semantic map into a photorealistic image. We propose to push the envelope further, and introduce Generative View Synthesis (GVS), which can synthesize multiple photorealistic views of a scene given a single semantic map. We show that the sequential application of existing techniques, e.g., semantics-to-image translation followed by monocular view synthesis, fail at capturing the scene's structure. In contrast, we solve the semantics-to-image translation in concert with the estimation of the 3D layout of the scene, thus producing geometrically consistent novel views that preserve semantic structures. We first lift the input 2D semantic map onto a 3D layered representation of the scene in feature space, thereby preserving the semantic labels of 3D geometric structures. We then project the layered features onto the target views to generate the final novel-view images. We verify the strengths of our method and compare it with several advanced baselines on three different datasets. Our approach also allows for style manipulation and image editing operations, such as the addition or removal of objects, with simple manipulations of the input style images and semantic maps respectively. Visit the project page at this https URL.
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引用它的顶会 Paper7
- StylizedNeRF: Consistent 3D Scene Stylization as Stylized NeRF via 2D-3D Mutual LearningYihua Huang, Yue He, Yu-Jie Yuan, Yu-Kun Lai 等CVPR 2022 · 被引用 145 次
- Learning to Stylize Novel ViewsHsin-Ping Huang, Hung-Yu Tseng, Saurabh Saini, Maneesh Singh 等ICCV 2021 · 被引用 98 次
- Embedding Novel Views in a Single JPEG ImageYue Wu, Guotao Meng, Qifeng ChenICCV 2021 · 被引用 16 次
- SOMSI: Spherical Novel View Synthesis with Soft Occlusion Multi-Sphere ImagesTewodros Habtegebrial, Christiano Couto Gava, Marcel Rogge, Didier Stricker 等CVPR 2022 · 被引用 12 次
- Learning Object Context for Novel-view Scene Layout GenerationXiaotian Qiao, Gerhard P. Hancke, Rynson W. H. LauCVPR 2022 · 被引用 6 次
它引用的顶会 Paper4
- Extreme View SynthesisInchang Choi, Orazio Gallo, Alejandro J. Troccoli, Min H. Kim 等ICCV 2019 · 被引用 207 次
- Monocular Neural Image Based Rendering With Continuous View ControlJie Song, Xu Chen, Otmar HilligesICCV 2019 · 被引用 85 次
- Single-View View Synthesis With Multiplane ImagesRichard Tucker, Noah SnavelyCVPR 2020
- SynSin: End-to-End View Synthesis From a Single ImageOlivia Wiles, Georgia Gkioxari, Richard Szeliski, Justin JohnsonCVPR 2020
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