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@@ -4,13 +4,13 @@
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| Model | Batch | Scale | AP<sup>val<br>0.5 | Weight | Logs |
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|-------------|-------|-------|-------------------|--------|--------|
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-| YOLOv7-AF-S | 1xb16 | 640 | 82.7 | [ckpt](https://github.com/yjh0410/YOLO-Tutorial-v7/releases/download/yolo_tutorial_ckpt/yolov7_af_s_voc.pth) | [log](https://github.com/yjh0410/YOLO-Tutorial-v7/releases/download/yolo_tutorial_ckpt/YOLOv7-AF-S-VOC.txt) |
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+| YOLOv7-AF-T | 1xb16 | 640 | 80.6 | [ckpt](https://github.com/yjh0410/YOLO-Tutorial-v7/releases/download/yolo_tutorial_ckpt/yolov7_af_t_voc.pth) | [log](https://github.com/yjh0410/YOLO-Tutorial-v7/releases/download/yolo_tutorial_ckpt/YOLOv7-AF-T-VOC.txt) |
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- COCO
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| Model | Batch | Scale | AP<sup>val<br>0.5:0.95 | AP<sup>val<br>0.5 | FLOPs<br><sup>(G) | Params<br><sup>(M) | Weight | Logs |
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|-------------|-------|-------|------------------------|-------------------|-------------------|--------------------|--------|--------|
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-| YOLOv7-AF-S | 1xb16 | 640 | | | 26.9 | 8.9 | | |
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+| YOLOv7-AF-T | 1xb16 | 640 | | | 26.9 | 8.9 | | |
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- For training, we train redesigned YOLOv7-AF with 500 epochs on COCO. We also use the gradient accumulation.
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- For data augmentation, we use the RandomAffine, RandomHSV, Mosaic and YOLOX's Mixup augmentation.
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