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+# [YOLOv10: Real-Time End-to-End Object Detection]()
-[中文](https://docs.ultralytics.com/zh/) | [한국어](https://docs.ultralytics.com/ko/) | [日本語](https://docs.ultralytics.com/ja/) | [Русский](https://docs.ultralytics.com/ru/) | [Deutsch](https://docs.ultralytics.com/de/) | [Français](https://docs.ultralytics.com/fr/) | [Español](https://docs.ultralytics.com/es/) | [Português](https://docs.ultralytics.com/pt/) | [हिन्दी](https://docs.ultralytics.com/hi/) | [العربية](https://docs.ultralytics.com/ar/)
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+Official PyTorch implementation of **YOLOv10**.
-[Ultralytics](https://ultralytics.com) [YOLOv8](https://github.com/ultralytics/ultralytics) is a cutting-edge, state-of-the-art (SOTA) model that builds upon the success of previous YOLO versions and introduces new features and improvements to further boost performance and flexibility. YOLOv8 is designed to be fast, accurate, and easy to use, making it an excellent choice for a wide range of object detection and tracking, instance segmentation, image classification and pose estimation tasks.
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+ Comparisons with others in terms of latency-accuracy (left) and size-accuracy (right) trade-offs.
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-We hope that the resources here will help you get the most out of YOLOv8. Please browse the YOLOv8
Docs for details, raise an issue on
GitHub for support, and join our
Discord community for questions and discussions!
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-To request an Enterprise License please complete the form at [Ultralytics Licensing](https://ultralytics.com/license).
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