From Points to Multi-Object 3D Reconstruction
Francis Engelmann, Konstantinos Rematas, Bastian Leibe, Vittorio Ferrari
摘要
We propose a method to detect and reconstruct multiple 3D objects from a single RGB image. The key idea is to optimize for detection, alignment and shape jointly over all objects in the RGB image, while focusing on realistic and physically plausible reconstructions. To this end, we propose a key-point detector that localizes objects as center points and directly predicts all object properties, including 9-DoF bounding boxes and 3D shapes – all in a single forward pass. The proposed method formulates 3D shape reconstruction as a shape selection problem, i.e. it selects among exemplar shapes from a given database. This makes it agnostic to shape representations, which enables a lightweight reconstruction of realistic and visually-pleasing shapes based on CAD-models, while the training objective is formulated around point clouds and voxel representations. A collision-loss promotes non-intersecting objects, further increasing the reconstruction realism. Given the RGB image, the presented approach performs lightweight reconstruction in a single-stage, it is real-time capable, fully differentiable and end-to-end trainable. Our experiments compare multiple approaches for 9-DoF bounding box estimation, evaluate the novel shape-selection mechanism and compare to recent methods in terms of 3D bounding box estimation and 3D shape reconstruction quality.
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引用它的顶会 Paper6
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- Voxel-based 3D Detection and Reconstruction of Multiple Objects from a Single ImageFeng Liu, Xiaoming LiuNeurIPS 2021 · 被引用 43 次
- MMGDreamer: Mixed-Modality Graph for Geometry-Controllable 3D Indoor Scene GenerationZhifei Yang, Keyang Lu, Chao Zhang, Jiaxing Qi 等AAAI 2025 · 被引用 21 次
- S-NeRF: Neural Radiance Fields for Street ViewsZiyang Xie, Junge Zhang, Wenye Li, Feihu Zhang 等ICLR 2023 · 被引用 13 次
- Multi-Object Manipulation via Object-Centric Neural Scattering FunctionsStephen Tian, Yancheng Cai, Hong-Xing Yu, Sergey Zakharov 等CVPR 2023
它引用的顶会 Paper10
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- An Analysis of SVD for Deep Rotation EstimationJake Levinson, Carlos Esteves, Kefan Chen, Noah Snavely 等NeurIPS 2020 · 被引用 131 次
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