Tencent-Hunyuan/HY-World-2.0Public

HY-World 2.0: A Multi-Modal World Model for Reconstructing, Generating, and Simulating 3D Worlds

AI summary: Tencent's advanced generative model suite for creating 360-degree panoramas and navigable 3D worlds from text or images.

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PythonOtherCreated Apr 10, 2026Last push 2d ago+38 stars this week+43 this month

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What HY-World-2.0 does

HY-World-2.0 is a state-of-the-art multimodal framework developed by Tencent Hunyuan for 3D world generation and reconstruction. The suite includes models like HY-Pano-2, which can generate high-resolution 360-degree panoramic images from simple text prompts or single input images. Furthermore, it integrates the WorldStereo series to convert these generated panoramas into fully explorable 3D Gaussian Splatting (3DGS) environments. By combining powerful diffusion models for image generation with advanced 3D reconstruction techniques, the project allows developers and researchers to rapidly prototype immersive virtual environments, VR content, and spatial assets without relying on traditional manual 3D modeling workflows.

This project is for AI researchers, 3D graphics engineers, and VR developers. It requires a strong understanding of Python, PyTorch, diffusion models, and advanced 3D representations like Gaussian Splatting, as well as access to high-end NVIDIA GPUs.

  • Text-to-panorama generation: Creates seamless 360-degree equirectangular images from text descriptions.
  • Image-to-panorama conversion: Expands a standard 2D image into a full panoramic environment.
  • 3D Gaussian Splatting (3DGS): Reconstructs generated panoramas into navigable 3D spatial representations.
  • Diffusers API integration: Provides a familiar, easy-to-use Python API for model inference.
  • Optimized variants: Includes smaller, quantized models (like HY-Pano-2-Qwen) for deployment on limited hardware.
  • Modular pipeline: Separates the workflow into panorama generation (worldgen) and 3D reconstruction (worldrecon).

Where teams use it

VR content creation

Developers generate custom 360-degree backgrounds and skyboxes for virtual reality applications using text prompts.

Game asset prototyping

Level designers rapidly visualize concepts by converting text descriptions into explorable 3D Gaussian Splatting environments.

Architectural visualization

Architects create immersive panoramic walk-throughs starting from a single concept render.

Synthetic data generation

Robotics researchers generate diverse 3D environments to train navigation algorithms in simulation.

Getting started: conda create -n hyworld2 python=3.11.15 && conda activate hyworld2 && pip install -r requirements.txt

README

main branch

HY-World 2.0: A Multi-Modal World Model for Reconstructing, Generating, and Simulating 3D Worlds

English | 简体中文

HY-World-2.0 Teaser


"What Is Now Proved Was Once Only Imagined"

🎥 Video

hyworld2_en.mp4

🔥 News

  • [July, 2026]: 🤗 Update HY World 2.1! Try our product.
  • [May 18, 2026]: 🤗 Open-source World Generation inference code and WorldStereo 2.0 model weights!
  • [May 11, 2026]: 🤗 Open-source HY-Pano 2.0 inference code and model weights!
  • [April 16, 2026]: 🚀 Release HY-World 2.0 technical report & partial codes!
  • [April 16, 2026]: 🤗 Open-source WorldMirror 2.0 inference code and model weights!

📋 Table of Contents

📖 Introduction

HY-World 2.0 is a multi-modal world model framework for world generation and world reconstruction. It accepts diverse input modalities — text, single-view images, multi-view images, and videos — and produces 3D world representations (meshes / Gaussian Splattings). It offers two core capabilities:

  • World Generation (text / single image → 3D world): syntheses high-fidelity, navigable 3D scenes through a four-stage method —— a) Panorama Generation with HY-Pano 2.0, b) Trajectory Planning with WorldNav, c) World Expansion with WorldStereo 2.0, and d) World Composition with WorldMirror 2.0 & 3DGS learning.
  • World Reconstruction (multi-view images / video → 3D): Powered by WorldMirror 2.0, a unified feed-forward model that simultaneously predicts depth, surface normals, camera parameters, 3D point clouds, and 3DGS attributes in a single forward pass.

HY-World 2.0 is an open-source state-of-the-art world model. We released all model weights, code, and technical details to facilitate reproducibility and advance research in this field.

Why 3D World Models?

Existing world models, such as Genie 3, Cosmos, and HY-World 1.5 (WorldPlay+WorldCompass), generate pixel-level videos — essentially "watching a movie" that vanishes once playback ends. HY-World 2.0 takes a fundamentally different approach: it directly produces editable, persistent 3D assets (meshes / 3DGS) that can be imported into game engines like Blender/Unity/Unreal Engine/Isaac Sim — more like "building a playable game" than recording a clip. This paradigm shift natively resolves many long-standing pain points of video world models:

Video World Models 3D World Model (HY-World 2.0)
Output Pixel videos (non-editable) Real 3D assets — meshes / 3DGS (fully editable)
Playable Duration Limited (typically 1 min) Unlimited — assets persist permanently
3D Consistency No (flickering, artifacts across views) Native — inherently consistent in 3D
Real-Time Rendering Requires per-frame inference; high latency Consumer GPUs can render in real time
Controllability Weak (imprecise character control, no real physics) Precise — zero-error control, real physics collision, accurate lighting
Inference Cost Accumulates with every interaction One-time generation; rendering cost ≈ 0
Engine Compatibility ✗ Video files only ✓ Directly importable into Blender / UE / Isaac Engine
$\color{IndianRed}{\textsf{Watch a video, then it's gone}}$ $\color{RoyalBlue}{\textbf{Build a world, keep it forever}}$

All above are real 3D assets (not generated videos) and entirely created by HY-World 2.0 -- captured from live real-time interaction.

✨ Highlights

  • Real 3D Worlds, Not Just Videos

    Unlike video-only world models (e.g., Genie 3, HY World 1.5), HY-World 2.0 generates real 3D assets — 3DGS, meshes, and point clouds — that are freely explorable, editable, and directly importable into Unity / Unreal Engine / Isaac. From a single text prompt or image, create navigable 3D worlds with diverse styles: realistic, cartoon, game, and more.

  • Instant 3D Reconstruction from Photos & Videos

    Powered by WorldMirror 2.0, a unified feed-forward model that predicts dense point clouds, depth maps, surface normals, camera parameters, and 3DGS from multi-view images or casual videos in a single forward pass. Supports flexible-resolution inference (50K–500K pixels) with SOTA accuracy. Capture a video, get a digital twin.

  • Interactive Character Exploration

    Go beyond viewing — play inside your generated worlds. HY-World 2.0 supports first-person navigation and third-person character mode, enabling users to freely explore AI-generated streets, buildings, and landscapes with physics-based collision. Go to our product page for free try.

🧩 Architecture

  • Refer to our tech report for more details

    A systematic pipeline of HY-World 2.0 — Panorama Generation (HY-Pano-2.0) → Trajectory Planning (WorldNav) → World Expansion (WorldStereo 2.0) → World Composition (WorldMirror 2.0 + Splattings Learning) — that automatically transforms text or a single image into a high-fidelity, navigable 3D world (3DGS/mesh outputs).

📝 Open-Source Plan

  • Technical Report
  • WorldMirror 2.0 Code & Model Checkpoints
  • Full Inference Code for World Generation (WorldNav + WorldStereo + World Composition)
  • Panorama Generation (HY-Pano 2.0) Model & Code
  • World Expansion (WorldStereo 2.0) Model & Code

🎁 Model Zoo

World Reconstruction — WorldMirror Series

Model Description Params Date Hugging Face
WorldMirror-2 [new] Multi-view / video → 3D reconstruction ~1.2B 2026 Download
WorldMirror-1 Multi-view / video → 3D reconstruction (legacy) ~1.2B 2025 Download

Panorama Generation — HY-Pano Series

Model Description Params Date Hugging Face
HY-Pano-2 [new] Text / image → 360° panorama ~80B 2026 Download
HY-Pano-2-Qwen [new] Text / image → 360° panorama ~425M 2026 Download

World Expansion — WorldStereo Series

Model Description Params Date Hugging Face
WorldStereo-2 [new] Panorama → 3DGS world ~17B 2026 Download

We recommend referring to our previous works, WorldStereo and WorldMirror, for background knowledge on 3D world generation and reconstruction.

🤗 Get Started

Install Requirements

We recommend CUDA 12.8 and Python 3.11+. The easiest path is to prepare one shared environment, first make World Reconstruction (WorldMirror 2.0) work, and then install the extra components required by World Generation.

1. Create the shared environment

git clone https://github.com/Tencent-Hunyuan/HY-World-2.0
cd HY-World-2.0

conda create -n hyworld2 python=3.11.15
conda activate hyworld2

2. Install World Reconstruction dependencies

After this step, the environment is ready for worldrecon / WorldMirror 2.0.

# Base dependencies shared by worldrecon and worldgen
pip install -r requirements.txt

# Recommended: install the custom gsplat variant once for both worldrecon and worldgen
cd hyworld2/worldgen/third_party/gsplat_maskgaussian
pip install -e . --no-build-isolation
cd ../../../../

If you only need worldrecon and want a simpler fallback, official gsplat is also supported:

pip install git+https://github.com/nerfstudio-project/gsplat.git

Install one FlashAttention backend:

# Recommended for Hopper GPUs: FlashAttention-3
git clone https://github.com/Dao-AILab/flash-attention.git
cd flash-attention/hopper
python setup.py install
cd ../../
rm -rf flash-attention
# Simpler alternative: FlashAttention-2
pip install flash-attn --no-build-isolation

3. Add extra World Generation dependencies

Run the following extra steps only if you need worldgen. These commands assume the shared hyworld2 environment above is already active.

# Git-based dependencies require torch/CUDA to be installed first
pip install --no-build-isolation -r requirements_git.txt

# recastnavigation is managed as a git submodule
git submodule update --init --recursive

# Recast navmesh extension for trajectory planning
cd hyworld2/worldgen/third_party/navmesh
pip install . --no-build-isolation
cd ../../../../

For HY-Pano-2 installation, please refer to hyworld2/panogen/README.md.

Code Usage — Panorama Generation (HY-Pano-2)

For full documentation and CLI reference, see hyworld2/panogen/README.md.

We provide a diffusers-like Python API for HY-Pano 2.0. Model weights are automatically downloaded from Hugging Face on first run.

from pipeline import HunyuanPanoPipeline

pipeline = HunyuanPanoPipeline.from_pretrained('tencent/HY-World-2.0')
output = pipeline('input.png')
output.save('output_panorama.png')

Code Usage — World Generation (WorldNav, WorldStereo-2, and 3DGS)

The world Generation pipeline turns a panorama scene into a navigable 3D world through five stages:

Stage Script Description
1. Trajectory Planning traj_generate.py VLM-guided camera trajectory planning with obstacle-aware navigation
2. Trajectory Rendering traj_render.py Multi-GPU point-cloud rendering along planned trajectories
3. World Expansion video_gen.py WorldStereo-2 keyframe generation with memory-guided consistency
4. GS Data Preparation gen_gs_data.py Extract frames, aligned depth, normals, and cameras for 3DGS training
5. 3DGS Training world_gs_trainer.py Optimize and export the final Gaussian Splatting world

For full documentation, prerequisites, and CLI arguments, see hyworld2/worldgen/README.md.

Code Usage — WorldMirror 2.0

WorldMirror 2.0 supports the following usage modes:

We provide a diffusers-like Python API for WorldMirror 2.0. Model weights are automatically downloaded from Hugging Face on first run.

from hyworld2.worldrecon.pipeline import WorldMirrorPipeline

pipeline = WorldMirrorPipeline.from_pretrained('tencent/HY-World-2.0')
result = pipeline('path/to/images')

With Prior Injection (Camera & Depth):

result = pipeline(
    'path/to/images',
    prior_cam_path='path/to/prior_camera.json',
    prior_depth_path='path/to/prior_depth/',
)

For the detailed structure of camera/depth priors and how to prepare them, see Prior Preparation Guide.

CLI:

# Single GPU
python -m hyworld2.worldrecon.pipeline --input_path path/to/images

# Multi-GPU
torchrun --nproc_per_node=2 -m hyworld2.worldrecon.pipeline \
    --input_path path/to/images \
    --use_fsdp --enable_bf16

Important: In multi-GPU mode, the number of input images must be >= the number of GPUs. For example, with --nproc_per_node=8, provide at least 8 images.

Gradio App — WorldMirror 2.0

We provide an interactive Gradio web demo for WorldMirror 2.0. Upload images or videos and visualize 3DGS, point clouds, depth maps, normal maps, and camera parameters in your browser.

# Single GPU
python -m hyworld2.worldrecon.gradio_app

# Multi-GPU
torchrun --nproc_per_node=2 -m hyworld2.worldrecon.gradio_app \
    --use_fsdp --enable_bf16

For the full list of Gradio app arguments (port, share, local checkpoints, etc.), see DOCUMENTATION.md.

🔮 Performance

For full benchmark results, please refer to the technical report.

WorldStereo 2.0 — Camera Control

Methods Camera Metrics Visual Quality
RotErr ↓TransErr ↓ATE ↓ Q-Align ↑CLIP-IQA+ ↑Laion-Aes ↑CLIP-I ↑
SEVA1.6901.5782.8793.2320.4794.62377.16
Gen3C0.9441.5802.7893.3530.4894.86382.33
WorldStereo0.7621.2452.1414.1490.5475.25789.05
WorldStereo 2.00.4920.9681.7684.2050.5445.26689.43

WorldStereo 2.0 — Single-View-Generated Reconstruction

Methods Tanks-and-Temples MipNeRF360
Precision ↑ Recall ↑ F1-Score ↑ AUC ↑ Precision ↑ Recall ↑ F1-Score ↑ AUC ↑
SEVA 33.59 35.34 36.73 51.03 22.38 55.63 28.75 46.81
Gen3C 46.73 25.51 31.24 42.44 23.28 75.37 35.26 52.10
Lyra 50.38 28.67 32.54 43.05 30.02 58.60 36.05 49.89
FlashWorld 26.58 20.72 22.29 30.45 35.97 53.77 42.60 53.86
WorldStereo 2.0 43.62 41.02 41.43 58.19 43.19 65.32 51.27 65.79
WorldStereo 2.0 (DMD) 40.41 44.41 43.16 60.09 42.34 64.83 50.52 65.64

WorldMirror 2.0 — Point Map Reconstruction

Point Map Reconstruction on 7-Scenes, NRGBD, and DTU. We report the mean Accuracy and Completeness of WorldMirror under different input configurations. Bold results are best. "L / M / H" denote low / medium / high inference resolution. "+ all priors" denotes injection of camera extrinsics, camera intrinsics, and depth priors.

Method 7-Scenes (scene) NRGBD (scene) DTU (object)
Acc. ↓Comp. ↓ Acc. ↓Comp. ↓ Acc. ↓Comp. ↓
WorldMirror 1.0
  L0.0430.0550.0460.0491.4761.768
  L + all priors0.0210.0260.0220.0201.3471.392
  M0.0430.0490.0410.0451.0171.780
  M + all priors0.0180.0230.0160.0140.7350.935
  H0.0790.0870.0770.0932.2712.113
  H + all priors0.0420.0410.0780.0821.7731.478
WorldMirror 2.0
  L0.0410.0520.0470.0581.3522.009
  L + all priors0.0190.0240.0170.0151.1001.201
  M0.0330.0460.0390.0471.0051.892
  M + all priors0.0130.0170.0130.0130.6900.876
  H0.0370.0400.0460.0530.8451.904
  H + all priors0.0120.0160.0150.0160.5540.771

WorldMirror 2.0 — Prior Comparison

Comparison with Pow3R and MapAnything under Different Prior Conditions. Results are averaged on 7-Scenes, NRGBD, and DTU datasets. Pow3R (pro) refers to the original Pow3R with Procrustes alignment.

🎬 More Examples

📖 Documentation

For detailed usage guides, parameter references, output format specifications, and prior injection instructions, see DOCUMENTATION.md.

📚 Citation

If you find HunyuanWorld 2.0 useful for your research, please cite:

@article{hyworld22026,
  title={HY-World 2.0: A Multi-Modal World Model for Reconstructing, Generating, and Simulating 3D Worlds},
  author={Team HY-World},
  journal={arXiv preprint arXiv:2604.14268},
  year={2026}
}

@article{hunyuanworld2025tencent,
    title={HunyuanWorld 1.0: Generating Immersive, Explorable, and Interactive 3D Worlds from Words or Pixels},
    author={Team HunyuanWorld},
    year={2025},
    journal={arXiv preprint}
}

📧 Contact

Please send emails to tengfeiwang12@gmail.com for questions or feedback.

🙏 Acknowledgements

We would like to thank HunyuanWorld 1.0, WorldMirror, WorldPlay, WorldStereo, HunyuanImage for their great work.

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Commits per week

last 52 weeks
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15 commits in the last 52 weeks.

When work happens

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Commit volume by weekday and hour (UTC). Larger dots mean more commits.
DateListRankStars gained
Apr 16, 2026daily#25+99
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