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b58ac94d
编写于
8月 22, 2020
作者:
Z
ZhidanLiu
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modity the notation of fuzzing
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mindarmour/fuzzing/fuzzing.py
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mindarmour/fuzzing/fuzzing.py
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@@ -140,17 +140,28 @@ class Fuzzer:
Args:
mutate_config (list): Mutate configs. The format is
[{'method': 'Blur', 'params': {'auto_param': True}}, {'method': 'Contrast', 'params': {'factor': 2}}].
The supported methods list is in `self._strategies`, and the params of each method must within the
range of changeable parameters. All supported methods are: 'Contrast', 'Brightness', 'Blur',
'Noise', 'Translate', 'Scale', 'Shear', 'Rotate', 'FGSM', 'PGD' and 'MDIIM'.
[{'method': 'Blur', 'params': {'auto_param': True}},
{'method': 'Contrast', 'params': {'factor': 2}}].
The supported methods list is in `self._strategies`, and the
params of each method must within the range of changeable parameters.
Supported methods are grouped in three types:
Firstly, pixel value based transform methods include:
'Contrast', 'Brightness', 'Blur' and 'Noise'. Secondly, affine
transform methods include: 'Translate', 'Scale', 'Shear' and
'Rotate'. Thirdly, attack methods include: 'FGSM', 'PGD' and 'MDIIM'.
`mutate_config` must have method in the type of pixel value based
transform methods. The way of setting parameters for first and
second type methods can be seen in 'mindarmour/fuzzing/image_transform.py'.
For third type methods, you can refer to the corresponding class.
initial_seeds (numpy.ndarray): Initial seeds used to generate
mutated samples.
coverage_metric (str): Model coverage metric of neural networks.
Default: 'KMNC'.
eval_metrics (Union[list, tuple, str]): Evaluation metrics. If the type is 'auto',
it will calculate all the metrics, else if the type is list or tuple, it will
calculate the metrics specified by user. Default: 'auto'.
coverage_metric (str): Model coverage metric of neural networks. All
supported metrics are: 'KMNC', 'NBC', 'SNAC'. Default: 'KMNC'.
eval_metrics (Union[list, tuple, str]): Evaluation metrics. If the
type is 'auto', it will calculate all the metrics, else if the
type is list or tuple, it will calculate the metrics specified
by user. All supported evaluate methods are 'accuracy',
'attack_success_rate', 'kmnc', 'nbc', 'snac'. Default: 'auto'.
max_iters (int): Max number of select a seed to mutate.
Default: 10000.
mutate_num_per_seed (int): The number of mutate times for a seed.
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