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AutodeskAILab avatar

AutodeskAILab/Clip-Forge

0
View on GitHub↗
398 stars·37 forks·Python·15 views

Clip Forge

Generating shapes using natural language can enable new ways of imagining and creating the things around us. While significant recent progress has been made in text-to-image generation, text-to-shape generation remains a challenging problem due to the unavailability of paired text and shape data…

Features

  • 3D Generation - Zero-shot text-to-shape generation.
  • Cross-Modal Models - Zero-shot text-to-shape generation using visual-language models.
  • Generative 3D Modeling - Enables zero-shot text-to-shape generation.

Star history

Star history chart for autodeskailab/clip-forgeStar history chart for autodeskailab/clip-forge

How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Projects sharing features with Clip Forge

These projects share indexed features with Clip Forge. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • openai/point-eopenai avatar

    openai/point-e

    6,886View on GitHub↗

    Point-e is a system for 3D model synthesis that generates three-dimensional point clouds from natural language descriptions and two-dimensional images. It utilizes diffusion models to synthesize these spatial representations based on text prompts or source images. The project includes specialized tools for refining these outputs, such as a point cloud upsampler to increase the density and resolution of low-resolution models. It also provides a mesh converter that uses distance function regression to transform raw point cloud data into structured 3D meshes. The broader capability surface cove

    Python
    View on GitHub↗6,886
  • openai/shap-eopenai avatar

    openai/shap-e

    12,251View on GitHub↗

    Shap-E is a generative 3D modeling system that creates three-dimensional digital assets from natural language descriptions or two-dimensional images. It functions as a generative model capable of producing three-dimensional implicit functions and assets. The project includes a 3D latent encoder that converts trimeshes and 3D models into latent representations using point clouds and multiview renders. It utilizes an image-to-3D generator to produce assets from synthetic view images and a text-to-3D generator to build shapes from text prompts. The system implements a pipeline involving latent

    Python
    View on GitHub↗12,251
  • facebookresearch/imagebindfacebookresearch avatar

    facebookresearch/ImageBind

    9,036View on GitHub↗

    ImageBind is a multi-modal embedding model and joint representation learner that maps images, text, audio, and other modalities into a single shared vector space. It functions as a cross-modal retrieval framework designed to bind multiple sensory inputs into one cohesive mathematical embedding. The system uses a contrastive learning architecture to align disparate data types by maximizing the similarity between related samples. This allows the model to perform zero-shot multimodal classification and execute cross-modal data retrieval, such as locating visual content via natural language descr

    Python
    View on GitHub↗9,036
  • threestudio-project/threestudiothreestudio-project avatar

    threestudio-project/threestudio

    7,027View on GitHub↗

    Threestudio is a 3D generative AI framework designed to create three-dimensional assets from text prompts and images. It provides specialized pipelines for text-to-3D generation and image-to-3D reconstruction, utilizing a neural radiance field trainer to produce geometry and textures. The framework is distinguished by its support for hybrid geometry backends, including signed distance functions, tetrahedra grids, and volume grids. It employs score distillation sampling to guide the generation process and features a modular plugin system for loading custom modules and nodes. The system covers

    Jupyter Notebook
    View on GitHub↗7,027
Compare all 30 related projects→

Frequently asked questions

What does autodeskailab/clip-forge do?

Generating shapes using natural language can enable new ways of imagining and creating the things around us. While significant recent progress has been made in text-to-image generation, text-to-shape generation remains a challenging problem due to the unavailability of paired text and shape data…

What are the main features of autodeskailab/clip-forge?

The main features of autodeskailab/clip-forge are: 3D Generation, Cross-Modal Models, Generative 3D Modeling.

Which projects share features with autodeskailab/clip-forge?

Projects with overlapping indexed features include: openai/point-e — Point-e is a system for 3D model synthesis that generates three-dimensional point clouds from natural language… threestudio-project/threestudio — Threestudio is a 3D generative AI framework designed to create three-dimensional assets from text prompts and images.… openai/shap-e — Shap-E is a generative 3D modeling system that creates three-dimensional digital assets from natural language… facebookresearch/imagebind — ImageBind is a multi-modal embedding model and joint representation learner that maps images, text, audio, and other… microsoft/trellis — TRELLIS is a 3D generative AI model and latent diffusion framework designed to transform natural language descriptions… nv-tlabs/get3d — GET3D is a generative 3D mesh model and rendering framework designed to synthesize high-quality textured shapes and…