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arxiv: 2408.13711 · v2 · pith:KZR3QECTnew · submitted 2024-08-25 · 💻 cs.CV · cs.MM

SceneDreamer360: Text-Driven 3D-Consistent Scene Generation with Panoramic Gaussian Splatting

classification 💻 cs.CV cs.MM
keywords generationpanoramicscenescenedreamer360text-drivenimagesconsistentd-consistent
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Text-driven 3D scene generation has seen significant advancements recently. However, most existing methods generate single-view images using generative models and then stitch them together in 3D space. This independent generation for each view often results in spatial inconsistency and implausibility in the 3D scenes. To address this challenge, we proposed a novel text-driven 3D-consistent scene generation model: SceneDreamer360. Our proposed method leverages a text-driven panoramic image generation model as a prior for 3D scene generation and employs 3D Gaussian Splatting (3DGS) to ensure consistency across multi-view panoramic images. Specifically, SceneDreamer360 enhances the fine-tuned Panfusion generator with a three-stage panoramic enhancement, enabling the generation of high-resolution, detail-rich panoramic images. During the 3D scene construction, a novel point cloud fusion initialization method is used, producing higher quality and spatially consistent point clouds. Our extensive experiments demonstrate that compared to other methods, SceneDreamer360 with its panoramic image generation and 3DGS can produce higher quality, spatially consistent, and visually appealing 3D scenes from any text prompt. Our codes are available at \url{https://github.com/liwrui/SceneDreamer360}.

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  1. FastPano3D: Feed-Forward Indoor Panoramic 3D Reconstruction from a Single Image

    cs.CV 2026-06 unverdicted novelty 6.0

    FastPano3D generates high-fidelity 3D Gaussian scenes from a single panoramic image via feed-forward inference, claimed 156x faster than prior methods with half the parameters.