updates
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@ -56,9 +56,15 @@ def model_info(model, report='summary'):
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def labels_to_class_weights(labels, nc=80):
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def labels_to_class_weights(labels, nc=80):
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# Get class weights (inverse frequency) from training labels
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# Get class weights (inverse frequency) from training labels
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ni = len(labels) # number of images
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labels = np.concatenate(labels, 0) # labels.shape = (866643, 5) for COCO
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labels = np.concatenate(labels, 0) # labels.shape = (866643, 5) for COCO
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classes = labels[:, 0].astype(np.int) # labels = [class xywh]
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classes = labels[:, 0].astype(np.int) # labels = [class xywh]
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weights = np.bincount(classes, minlength=nc) # occurences per class
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weights = np.bincount(classes, minlength=nc) # occurences per class
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# Prepend gridpoint count (for uCE trianing)
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# gpi = ((320 / 32 * np.array([1, 2, 4])) ** 2 * 3).sum() # gridpoints per image
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# weights = np.hstack([gpi * ni, weights]) # prepend gridpoints to start
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weights[weights == 0] = 1 # replace empty bins with 1
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weights[weights == 0] = 1 # replace empty bins with 1
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weights = 1 / weights # number of targets per class
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weights = 1 / weights # number of targets per class
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weights /= weights.sum() # normalize
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weights /= weights.sum() # normalize
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