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@ -316,6 +316,7 @@ class AugmentOp:
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def __init__(self, name, prob=0.5, magnitude=10, hparams=None):
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hparams = hparams or _HPARAMS_DEFAULT
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self.name = name
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self.aug_fn = NAME_TO_OP[name]
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self.level_fn = LEVEL_TO_ARG[name]
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self.prob = prob
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@ -351,6 +352,14 @@ class AugmentOp:
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level_args = self.level_fn(magnitude, self.hparams) if self.level_fn is not None else tuple()
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return self.aug_fn(img, *level_args, **self.kwargs)
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def __repr__(self):
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fs = self.__class__.__name__ + f'(name={self.name}, p={self.prob}'
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fs += f', m={self.magnitude}, mstd={self.magnitude_std}'
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if self.magnitude_max is not None:
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fs += f', mmax={self.magnitude_max}'
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fs += ')'
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return fs
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def auto_augment_policy_v0(hparams):
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# ImageNet v0 policy from TPU EfficientNet impl, cannot find a paper reference.
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@ -510,6 +519,15 @@ class AutoAugment:
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img = op(img)
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return img
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def __repr__(self):
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fs = self.__class__.__name__ + f'(policy='
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for p in self.policy:
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fs += '\n\t['
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fs += ', '.join([str(op) for op in p])
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fs += ']'
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fs += ')'
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return fs
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def auto_augment_transform(config_str, hparams):
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"""
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@ -634,6 +652,13 @@ class RandAugment:
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img = op(img)
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return img
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def __repr__(self):
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fs = self.__class__.__name__ + f'(n={self.num_layers}, ops='
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for op in self.ops:
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fs += f'\n\t{op}'
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fs += ')'
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return fs
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def rand_augment_transform(config_str, hparams):
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"""
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@ -782,6 +807,13 @@ class AugMixAugment:
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mixed = self._apply_basic(img, mixing_weights, m)
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return mixed
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def __repr__(self):
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fs = self.__class__.__name__ + f'(alpha={self.alpha}, width={self.width}, depth={self.depth}, ops='
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for op in self.ops:
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fs += f'\n\t{op}'
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fs += ')'
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return fs
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def augment_and_mix_transform(config_str, hparams):
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""" Create AugMix PyTorch transform
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