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Add hyp.scratch-med.yaml (#5196)

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* Add hyp.scratch-med.yaml

* Update hyp.scratch-med.yaml

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  1. data/hyps/hyp.scratch-med.yaml +34 -0
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+ # YOLOv5 πŸš€ by Ultralytics, GPL-3.0 license
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+ # Hyperparameters for medium-augmentation COCO training from scratch
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+ # python train.py --batch 32 --cfg yolov5m6.yaml --weights '' --data coco.yaml --img 1280 --epochs 300
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+ # See tutorials for hyperparameter evolution https://github.com/ultralytics/yolov5#tutorials
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+
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+ lr0: 0.01 # initial learning rate (SGD=1E-2, Adam=1E-3)
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+ lrf: 0.1 # final OneCycleLR learning rate (lr0 * lrf)
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+ momentum: 0.937 # SGD momentum/Adam beta1
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+ weight_decay: 0.0005 # optimizer weight decay 5e-4
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+ warmup_epochs: 3.0 # warmup epochs (fractions ok)
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+ warmup_momentum: 0.8 # warmup initial momentum
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+ warmup_bias_lr: 0.1 # warmup initial bias lr
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+ box: 0.05 # box loss gain
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+ cls: 0.3 # cls loss gain
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+ cls_pw: 1.0 # cls BCELoss positive_weight
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+ obj: 0.7 # obj loss gain (scale with pixels)
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+ obj_pw: 1.0 # obj BCELoss positive_weight
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+ iou_t: 0.20 # IoU training threshold
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+ anchor_t: 4.0 # anchor-multiple threshold
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+ # anchors: 3 # anchors per output layer (0 to ignore)
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+ fl_gamma: 0.0 # focal loss gamma (efficientDet default gamma=1.5)
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+ hsv_h: 0.015 # image HSV-Hue augmentation (fraction)
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+ hsv_s: 0.7 # image HSV-Saturation augmentation (fraction)
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+ hsv_v: 0.4 # image HSV-Value augmentation (fraction)
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+ degrees: 0.0 # image rotation (+/- deg)
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+ translate: 0.1 # image translation (+/- fraction)
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+ scale: 0.9 # image scale (+/- gain)
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+ shear: 0.0 # image shear (+/- deg)
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+ perspective: 0.0 # image perspective (+/- fraction), range 0-0.001
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+ flipud: 0.0 # image flip up-down (probability)
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+ fliplr: 0.5 # image flip left-right (probability)
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+ mosaic: 1.0 # image mosaic (probability)
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+ mixup: 0.1 # image mixup (probability)
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+ copy_paste: 0.0 # segment copy-paste (probability)