SceneWeaver: All-in-One 3D Scene Synthesis with an Extensible and Self-Reflective Agent
Yandan Yang, Baoxiong Jia, Shujie Zhang, Siyuan Huang
摘要
Indoor scene synthesis has become increasingly important with the rise of Embodied AI, which requires 3D environments that are not only visually realistic but also physically plausible and functionally diverse. While recent approaches have advanced visual fidelity, they often remain constrained to fixed scene categories, lack sufficient object-level detail and physical consistency, and struggle to align with complex user instructions. In this work, we present SceneWeaver, a reflective agentic framework that unifies diverse scene synthesis paradigms through tool-based iterative refinement. At its core, SceneWeaver employs a language model-based planner to select from a suite of extensible scene generation tools, ranging from data-driven generative models to visual- and LLM-based methods, guided by self-evaluation of physical plausibility, visual realism, and semantic alignment with user input. This closed-loop reason-act-reflect design enables the agent to identify semantic inconsistencies, invoke targeted tools, and update the environment over successive iterations. Extensive experiments on both common and open-vocabulary room types demonstrate that SceneWeaver not only outperforms prior methods on physical, visual, and semantic metrics, but also generalizes effectively to complex scenes with diverse instructions, marking a step toward general-purpose 3D environment generation. Project website: https://scene-weaver.github.io/.
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引用它的顶会 Paper6
- SAGE: Scalable Agentic 3D Scene Generation for Embodied AIHongchi Xia, Xuan Li, Zhaoshuo Li, Qianli Ma 等CVPR 2026 · 被引用 50 次
- MANSION: Multi-floor lANguage-to-3D Scene generatIOn for loNg-horizon tasksLirong Che, Shuo Wen, Shan Huang, Chuang Wang 等CVPR 2026 · 被引用 8 次
- I-Scene: 3D Instance Models are Implicit Generalizable Spatial LearnersLu Ling, Yunhao Ge, Yichen Sheng, Aniket BeraCVPR 2026 · 被引用 7 次
- InfiniBench: Infinite Benchmarking for Visual Spatial Reasoning with Customizable Scene ComplexityHaoming Wang, Qiyao Xue, Wei GaoCVPR 2026 · 被引用 6 次
- Edit-As-Act: Goal-Regressive Planning for Open-Vocabulary 3D Indoor Scene EditingSeongRae Noh, Seungwon Seo, Gyeong-Moon Park, HyeongYeop KangCVPR 2026 · 被引用 4 次
它引用的顶会 Paper21
- 🏘️ ProcTHOR: Large-Scale Embodied AI Using Procedural GenerationMatt Deitke, Eli VanderBilt, Alvaro Herrasti, Luca Weihs 等NeurIPS 2022 · 被引用 596 次
- LayoutGPT: Compositional Visual Planning and Generation with Large Language ModelsWeixi Feng, Wanrong Zhu, Tsu-Jui Fu, Varun Jampani 等NeurIPS 2023 · 被引用 462 次
- 3D-FRONT: 3D Furnished Rooms with layOuts and semaNTicsHuan Fu, Bowen Cai, Lin Gao, Lingxiao Zhang 等ICCV 2021 · 被引用 419 次
- Visual Sketchpad: Sketching as a Visual Chain of Thought for Multimodal Language ModelsYushi Hu, Weijia Shi, Xingyu Fu, Dan Roth 等NeurIPS 2024 · 被引用 373 次
- ATISS: Autoregressive Transformers for Indoor Scene SynthesisDespoina Paschalidou, Amlan Kar, Maria Shugrina, Karsten Kreis 等NeurIPS 2021 · 被引用 293 次
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