Improved hubconf.py CI tests (#2251)
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@ -133,9 +133,14 @@ if __name__ == '__main__':
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# model = custom(path_or_model='path/to/model.pt') # custom example
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# Verify inference
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import numpy as np
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from PIL import Image
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imgs = [Image.open(x) for x in Path('data/images').glob('*.jpg')]
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results = model(imgs)
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imgs = [Image.open('data/images/bus.jpg'), # PIL
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'data/images/zidane.jpg', # filename
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'https://github.com/ultralytics/yolov5/raw/master/data/images/bus.jpg', # URI
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np.zeros((640, 480, 3))] # numpy
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results = model(imgs) # batched inference
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results.print()
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results.save()
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@ -254,7 +254,7 @@ class Detections:
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n = (pred[:, -1] == c).sum() # detections per class
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str += f"{n} {self.names[int(c)]}{'s' * (n > 1)}, " # add to string
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if show or save or render:
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img = Image.fromarray(img) if isinstance(img, np.ndarray) else img # from np
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img = Image.fromarray(img.astype(np.uint8)) if isinstance(img, np.ndarray) else img # from np
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for *box, conf, cls in pred: # xyxy, confidence, class
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# str += '%s %.2f, ' % (names[int(cls)], conf) # label
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ImageDraw.Draw(img).rectangle(box, width=4, outline=colors[int(cls) % 10]) # plot
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