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README.md
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# YOLOv12-N
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## Model Description
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**YOLOv12-N** is a variant of the 12th-generation YOLO (You Only Look Once) real-time object detector.
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It builds on prior YOLO models with improved backbone/neck architectures, updated training strategies, and optimizations for both high-performance GPUs and edge devices.
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## Features
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- **Real-time object detection** optimized for low-latency inference.
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- **High accuracy** across diverse categories and challenging environments.
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- **Lightweight variants** suitable for mobile and embedded deployment.
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- **Scalable**: runs from smartphones to multi-GPU servers.
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- **Extensible**: fine-tuning supported for domain-specific datasets.
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## Use Cases
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- Autonomous driving and ADAS (Advanced Driver Assistance Systems)
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- Surveillance and security monitoring
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- Industrial automation and defect detection
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- Retail analytics and inventory monitoring
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- Sports analytics and event detection
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## Inputs and Outputs
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**Input**:
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- RGB images or video frames (any resolution; auto-resized during preprocessing).
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**Output**:
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- Bounding boxes `(x, y, w, h)`
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- Class labels
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- Confidence scores
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## License
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- Licensed under [AGPL-3.0](https://github.com/ultralytics/ultralytics?tab=AGPL-3.0-1-ov-file#readme) (same as Ultralytics YOLO).
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## References
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- Original repo: [https://github.com/sunsmarterjie/yolov12](https://github.com/sunsmarterjie/yolov12)
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- Ultralytics YOLO family: [https://github.com/ultralytics/ultralytics](https://github.com/ultralytics/ultralytics)
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