Slice3D: Multi-Slice, Occlusion-Revealing, Single View 3D Reconstruction
Yizhi Wang, Wallace P. Lira, Wenqi Wang, Ali Mahdavi-Amiri, Hao Zhang
Abstract
We introduce multi-slice reasoning, a new notion for single-view 3D reconstruction which challenges the current and prevailing belief that multi-view synthesis is the most natural conduit between single-view and 3D. Our key ob-servation is that object slicing is a more direct, and hence more advantageous, means to reveal occluded structures than altering camera views. Specifically, slicing can peel through any occluder without obstruction, and in the limit (i.e., with infinitely many slices), it is guaranteed to unveil all hidden object parts. We realize our idea by developing Slice3D, a novel method for single-view 3D reconstruction which first predicts multi-slice images from a single RGB input image and then integrates the slices into a 3D model using a coordinate-based transformer network to product a signed distance function. The slice images can be regressed or generated, both through a U-Net based network. For the former, we inject a learnable slice indicator code to desig-nate each decoded image into a spatial slice location, while the slice generator is a denoising diffusion model operating on the entirety of slice images stacked on the input channels. We conduct extensive evaluation against state-of-the-art alternatives to demonstrate superiority of our method, especially in recovering complex and severely occluded shape structures, amid ambiguities. All Slice3D results were produced by networks trained on a single Nvidia A40 GPU, with an inference time of less than 20 seconds.
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Install the CLIlune papers fulltext ec7121de-a49e-4a60-b4a2-d25a4133d11cCited by top-tier papers4
- LaRI: Layered Ray Intersections for Single-view 3D Geometric ReasoningRui Li, Biao Zhang, Zhenyu Li, Federico Tombari et al.ICML 2026
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- GALA: Geometry-Aware Local Adaptive Grids for Detailed 3D GenerationDingdong Yang, Yizhi Wang, Konrad Schindler, Ali Mahdavi Amiri et al.ICLR 2025
- Geometry-Guided Modeling of Foundation Features Enables Generalizable Object Shape Deformation LearningYIYAO MA, Kai Chen, Zhongxiang Zhou, Zhuheng Song et al.ICML 2026
Builds on31
- Denoising Diffusion Probabilistic ModelsJonathan Ho, Ajay Jain, Pieter AbbeelNeurIPS 2020 · 35,902 citations
- Diffusion Models Beat GANs on Image SynthesisPrafulla Dhariwal, Alexander Quinn NicholNeurIPS 2021 · 13,211 citations
- High-Resolution Image Synthesis with Latent Diffusion ModelsRobin Rombach, Andreas Blattmann, Dominik Lorenz, Patrick Esser et al.CVPR 2022 · 13,123 citations
- NeuS: Learning Neural Implicit Surfaces by Volume Rendering for Multi-view ReconstructionPeng Wang, Lingjie Liu, Yuan Liu, Christian Theobalt et al.NeurIPS 2021 · 2,500 citations
- Zero-1-to-3: Zero-shot One Image to 3D ObjectRuoshi Liu, Rundi Wu, Basile Van Hoorick, Pavel Tokmakov et al.ICCV 2023 · 1,662 citations
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