René's URL Explorer Experiment


Title: RealmDreamer: Text-Driven 3D Scene Generation with Inpainting and Depth Diffusion

Open Graph Title: RealmDreamer: Text-Driven 3D Scene Generation with Inpainting and Depth Diffusion

X Title: RealmDreamer: Text-Driven 3D Scene Generation with Inpainting and Depth Diffusion

Open Graph Description: We introduce RealmDreamer, a technique for generation of general forward-facing 3D scenes from text descriptions. Our technique optimizes a 3D Gaussian Splatting representation to match complex text prompts. We initialize these splats by utilizing the state-of-the-art text-to-image generators, lifting their samples into 3D, and computing the occlusion volume. We then optimize this representation across multiple views as a 3D inpainting task with image-conditional diffusion models. To learn correct geometric structure, we incorporate a depth diffusion model by conditioning on the samples from the inpainting model, giving rich geometric structure. Finally, we finetune the model using sharpened samples from image generators. Notably, our technique does not require training on any scene-specific dataset and can synthesize a variety of high-quality 3D scenes in different styles, consisting of multiple objects. Its generality additionally allows 3D synthesis from a single image. .

X Description: We introduce RealmDreamer, a technique for generation of general forward-facing 3D scenes from text descriptions. Our technique optimizes a 3D Gaussian Splatting representation to match complex text prompts. We initialize these splats by utilizing the state-of-the-art text-to-image generators, lifting their samples into 3D, and computing the occlusion volume. We then optimize this representation across multiple views as a 3D inpainting task with image-conditional diffusion models. To learn correct geometric structure, we incorporate a depth diffusion model by conditioning on the samples from the inpainting model, giving rich geometric structure. Finally, we finetune the model using sharpened samples from image generators. Notably, our technique does not require training on any scene-specific dataset and can synthesize a variety of high-quality 3D scenes in different styles, consisting of multiple objects. Its generality additionally allows 3D synthesis from a single image.

Opengraph URL: https://realmdreamer.github.io/

direct link

Domain: realmdreamer.github.io

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twitter:imagehttps://realmdreamer.github.io/img/grid_teaser_img.png

Links:

Paperhttps://realmdreamer.github.io/pdf/realmdreamer.pdf
Arxivhttps://arxiv.org/abs/2404.07199
Codehttps://github.com/jaidevshriram/realmdreamer
Jaidev Shriram https://jaidevshriram.com//
Alex Trevithick https://alextrevithick.github.io/
Lingjie Liu https://lingjie0206.github.io/
Ravi Ramamoorthi https://cseweb.ucsd.edu/~ravir/
Jaidev Shriram https://jaidevshriram.com//
Alex Trevithick https://alextrevithick.github.io/
Lingjie Liu https://lingjie0206.github.io/
Ravi Ramamoorthi https://cseweb.ucsd.edu/~ravir/
Paperhttps://realmdreamer.github.io/pdf/realmdreamer.pdf
Arxivhttps://arxiv.org/abs/2404.07199
Codehttps://github.com/jaidevshriram/realmdreamer
Dreamfusionhttps://dreamfusion3d.github.io/
Score Jacobian Chaininghttps://pals.ttic.edu/p/score-jacobian-chaining
ProlificDreamerhttps://ml.cs.tsinghua.edu.cn/prolificdreamer/
Text2Roomhttps://lukashoel.github.io/text-to-room/
NeRFiller: Completing Scenes via Generative 3D Inpaintinghttps://ethanweber.me/nerfiller/
Inpaint3D: 3D Scene Content Generation using 2D Inpainting Diffusionhttps://arxiv.org/abs/2312.03869
SceneWiz3D: Towards Text-guided 3D Scene Compositionhttps://zqh0253.github.io/SceneWiz3D/
Text2NeRF: Text-Driven 3D Scene Generation with Neural Radiance Fieldshttps://eckertzhang.github.io/Text2NeRF.github.io/
Reconfusionhttps://reconfusion.github.io/
Michaël Gharbi,http://mgharbi.com/
Ref-NeRFhttps://dorverbin.github.io/refnerf

Viewport: width=device-width, initial-scale=1


URLs of crawlers that visited me.