Point Cloud Semantic Scene Completion with Prototype-Guided Transformer
Chenghao Fang, Jianqing Liang, Jiye Liang, Zijin Du, Feilong Cao
摘要
Semantic scene completion simultaneously reconstructs the shapes of missing regions and predicts semantic labels for the entire 3D scene. Although point cloud-based methods are more efficient than voxel-based methods, existing point cloud-based approaches largely fail to fully leverage semantic information. To address this challenge, we propose a Prototype-Guided Transformer (ProtoFormer) that encodes semantic information into a set of semantic prototypes to guide the underlying Transformer for semantic scene completion. Specifically, we leverage semantic prototypes to enhance information from both geometric and semantic perspectives, and integrate the top-K attention mechanisms to guide scene completion and semantic awareness. Extensive qualitative and quantitative experimental results demonstrate that ProtoFormer outperforms state-of-the-art approaches with low complexity.
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它引用的顶会 Paper17
- PoinTr: Diverse Point Cloud Completion with Geometry-Aware TransformersXumin Yu, Yongming Rao, Ziyi Wang, Zuyan Liu 等ICCV 2021 · 被引用 592 次
- Cross-modal Learning for Image-Guided Point Cloud Shape CompletionEmanuele Aiello, Diego Valsesia, Enrico MagliNeurIPS 2022 · 被引用 82 次
- Context and Geometry Aware Voxel Transformer for Semantic Scene CompletionZhu Yu, Runmin Zhang, Jiacheng Ying, Junchen Yu 等NeurIPS 2024 · 被引用 73 次
- SVDFormer: Complementing Point Cloud via Self-view Augmentation and Self-structure Dual-generatorZhe Zhu, Honghua Chen, Xing He, Weiming Wang 等ICCV 2023 · 被引用 59 次
- CRA-PCN: Point Cloud Completion with Intra- and Inter-level Cross-Resolution TransformersYi Rong, Haoran Zhou, Lixin Yuan, Cheng Mei 等AAAI 2024 · 被引用 37 次
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