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---
license: cc-by-sa-4.0
---
# recammaster_based_multi_camera_video_dataset  
**A Real-World Multi-Camera Video Dataset for Generative Vision AI**  

## ๐Ÿ“Œ Overview  
The MultiScene360 Dataset is designed to advance generative vision AI by providing synchronized multi-camera footage from real-world environments.  

๐Ÿ’ก **Key Applications**:  
โœ” Video generation & view synthesis  
โœ” 3D reconstruction & neural rendering  
โœ” Digital human animation systems  
โœ” Virtual/augmented reality development  

## ๐Ÿ“Š Dataset Specifications (Public Version)  
| Category            | Specification                          |
|---------------------|----------------------------------------|
| Scenes              | 10 base + 3 extended scenes           |
| Scene Duration      | 10-20 seconds each                   |
| Camera Views        | 4 synchronized angles per scene      |
| Total Video Clips   | ~144                                 |
| Data Volume         | 20-30GB (1080p@30fps)               |

*Commercial version available with 200+ scenes and 6-8 camera angles*

## ๐ŸŒ† Complete Scene Specification  
| ID   | Environment | Location        | Primary Action             | Special Features          |
|------|-------------|-----------------|----------------------------|---------------------------|
| S001 | Indoor      | Living Room     | Walk โ†’ Sit                 | Occlusion handling        |
| S002 | Indoor      | Kitchen         | Pour water + Open cabinet  | Fine hand motions         |
| S003 | Indoor      | Corridor        | Walk โ†’ Turn                | Depth perception         |
| S004 | Indoor      | Desk            | Type โ†’ Head turn           | Upper body motions       |
| S005 | Outdoor     | Park            | Walk โ†’ Sit (bench)         | Natural lighting         |
| S006 | Outdoor     | Street          | Walk โ†’ Stop โ†’ Phone check  | Gait variation           |
| S007 | Outdoor     | Staircase       | Ascend stairs              | Vertical movement        |
| S008 | Indoor      | Corridor        | Two people passing         | Multi-person occlusion   |
| S009 | Indoor      | Mirror          | Dressing + mirror view     | Reflection surfaces      |
| S010 | Indoor      | Empty room      | Dance movements            | Full-body dynamics       |
| S011 | Indoor      | Window          | Phone call + clothes adjust| Silhouette + semi-reflections |
| S012 | Outdoor     | Shopping street | Walking + window browsing  | Transparent surfaces + crowd |
| S013 | Indoor      | Night corridor  | Walking + light switching  | Low-light adaptation     |

## ๐ŸŽฅ Camera Configuration  
**Physical Setup**:  
 cam01โ”€โ”€โ”€โ”€โ”€โ”€cam02
    \         /
      Subject
    /         \
  cam04โ”€โ”€โ”€โ”€โ”€โ”€cam03

**Technical Details**:  
- **Cameras**: DJI Osmo Action 5 Pro (4 identical units)  
- **Mounting**: Tripod-stabilized at ~1.5m height  
- **Distance**: 2-3m from subject center  
- **FOV Overlap**: 20-30% between adjacent cameras  

## ๐Ÿ” Suggested Research Directions  
1. Cross-view consistency learning  
2. Novel view synthesis from sparse inputs  
3. Dynamic scene reconstruction  
4. Human motion transfer between viewpoints  

## ๐Ÿš€ Access Information  
๐ŸŽฏ **FULL Dataset Download Here**: https://madacode.file.core.windows.net/root/360/MultiScene360%20Dataset.zip?sv=2023-01-03&st=2025-05-06T09%3A23%3A15Z&se=2028-01-07T09%3A23%3A00Z&sr=f&sp=r&sig=KnyHrAfeeCIpufeALFYRDAWDZ7W1F7hGUDToA26y9HQ%3D

๐Ÿ’ผ **Commercial Inquiries**: contact@maadaa.ai  
 **Usage Rights**:  
โœ” Free for academic/commercial use  
โœ” License: Attribution-NonCommercial-ShareAlike 4.0 International

## About maadaa.ai
Founded in 2015, maadaa.ai is a pioneering AI data service provider specializing in multimodal data solutions for generative AI development. We deliver end-to-end data services covering text, voice, image, and video datatypes โ€“ the core fuel for training and refining generative models.
**Our Generative AI Data Solution includes:**
๊”ท High-quality dataset collection & annotation tailored for LLMs and diffusion models
๊”ท Scenario-based human feedback (RLHF/RLAIF) to enhance model alignment
๊”ท One-stop data management through our MaidX platform for streamlined model training

**Why Choose Us**:  
โœ“ Reduce real-world data collection costs by 70%+  
โœ“ Generate perfectly labeled training data at scale  
โœ“ API-first integration for synthetic pipelines  

*Empowering the next generation of interactive media and spatial computing**