PyTorch Hub model.save() increment as runs/hub/exp (#2684)
* PyTorch Hub model.save() increment as runs/hub/exp This chane will align PyTorch Hub results saving with the existing unified results saving directory structure of runs/ /train /detect /test /hub /exp /exp2 ... * cleanuppull/2689/head
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@ -11,7 +11,7 @@ from PIL import Image
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from torch.cuda import amp
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from utils.datasets import letterbox
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from utils.general import non_max_suppression, make_divisible, scale_coords, xyxy2xywh
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from utils.general import non_max_suppression, make_divisible, scale_coords, increment_path, xyxy2xywh
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from utils.plots import color_list, plot_one_box
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from utils.torch_utils import time_synchronized
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@ -324,9 +324,9 @@ class Detections:
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if show:
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img.show(self.files[i]) # show
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if save:
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f = Path(save_dir) / self.files[i]
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img.save(f) # save
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print(f"{'Saving' * (i == 0)} {f},", end='' if i < self.n - 1 else ' done.\n')
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f = self.files[i]
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img.save(Path(save_dir) / f) # save
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print(f"{'Saved' * (i == 0)} {f}", end=',' if i < self.n - 1 else f' to {save_dir}\n')
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if render:
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self.imgs[i] = np.asarray(img)
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@ -337,8 +337,9 @@ class Detections:
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def show(self):
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self.display(show=True) # show results
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def save(self, save_dir='results/'):
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Path(save_dir).mkdir(exist_ok=True)
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def save(self, save_dir='runs/hub/exp'):
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save_dir = increment_path(save_dir, exist_ok=save_dir != 'runs/hub/exp') # increment save_dir
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Path(save_dir).mkdir(parents=True, exist_ok=True)
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self.display(save=True, save_dir=save_dir) # save results
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def render(self):
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