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Related Experiment Video

Updated: Jul 15, 2025

Creating Objects and Object Categories for Studying Perception and Perceptual Learning
14:38

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DreamStone: Image as a Stepping Stone for Text-Guided 3D Shape Generation.

Zhengzhe Liu, Peng Dai, Ruihui Li

    IEEE Transactions on Pattern Analysis and Machine Intelligence
    |October 2, 2023
    PubMed
    Summary
    This summary is machine-generated.

    DreamStone generates 3D shapes from text without paired data, using images as an intermediate step. This approach enhances 3D shape generation quality and text consistency.

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    Area of Science:

    • Computer Vision
    • Computer Graphics
    • Artificial Intelligence

    Background:

    • Generating 3D shapes from text descriptions is challenging due to the lack of large-scale paired text-3D datasets.
    • Existing methods often struggle with fidelity and consistency between text prompts and generated 3D models.

    Purpose of the Study:

    • To introduce DreamStone, a novel text-guided 3D shape generation approach.
    • To enable 3D shape generation without requiring paired text-3D data by leveraging intermediate image representations.
    • To enhance the diversity, fidelity, and stylization capabilities of generated 3D shapes.

    Main Methods:

    • A two-stage feature-space alignment strategy using a pre-trained single-view reconstruction (SVR) model.
    • Mapping CLIP image features to the SVR model's 3D shape space.
    • Mapping CLIP text features to the 3D shape space via CLIP-consistency with rendered images.
    • Integrating a text-guided 3D shape stylization module.
    • Exploiting pre-trained text-to-image diffusion models for enhanced generation.

    Main Results:

    • DreamStone successfully generates 3D shapes from text descriptions without paired data.
    • The approach demonstrates superior generative quality and consistency compared to state-of-the-art methods.
    • The stylization module enhances generated shapes with novel structures and textures.
    • Integration with diffusion models improves generative diversity and fidelity.

    Conclusions:

    • DreamStone offers a flexible and scalable solution for text-guided 3D shape generation.
    • The method effectively bridges the gap between text and 3D shape modalities.
    • The approach shows significant potential for various applications in 3D content creation and AI research.