cooper_robot
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Add release note for v1.1.0
Browse files- README.md +27 -0
- resource/YOLOX.png +3 -0
README.md
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---
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library_name: pytorch
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---
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YOLOX modernizes one-stage object detection by adopting an anchor-free design and decoupled classification and regression heads, improving both accuracy and convergence speed.
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Original paper: [YOLOX: Exceeding YOLO Series in 2021](https://arxiv.org/abs/2107.08430)
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# YOLOX-S
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YOLOX-S (Small) is a lightweight variant optimized for fast inference while maintaining competitive detection accuracy. It is well suited for real-time object detection in applications such as video analytics, robotics, and edge deployment where low latency is critical.
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Model Configuration:
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- Reference implementation: [YOLOX](https://github.com/Megvii-BaseDetection/YOLOX)
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- Original Weight: [YOLOX_S_Weights.COCO2017](https://github.com/Megvii-BaseDetection/YOLOX/releases/download/0.1.1rc0/yolox_s.pth)
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- Resolution: 3x640x640
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- Support Cooper version:
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- Cooper SDK: [2.5.2]
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- Cooper Foundry: [2.2]
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| Model | Device | Model Link |
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| :-----: | :-----: | :-----: |
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| YOLOX-s | N1-655 | [Model_Link](https://huggingface.co/Ambarella/YOLOX/blob/main/n1-655_yolox_s.bin) |
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| YOLOX-s | CV72 | [Model_Link](https://huggingface.co/Ambarella/YOLOX/blob/main/cv72_yolox_s.bin) |
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| YOLOX-s | CV75 | [Model_Link](https://huggingface.co/Ambarella/YOLOX/blob/main/cv75_yolox_s.bin) |
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resource/YOLOX.png
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Git LFS Details
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