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| import sys |
| import argparse |
| import json |
| from copy import deepcopy |
|
|
| class Config: |
| def __init__(self, **kwargs): |
| self.from_args([]) |
| self.default_args = deepcopy(self.__dict__) |
| self.from_dict(kwargs) |
|
|
| def __str__(self): |
| custom = {} |
| default = {} |
|
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| |
| for k, v in self.__dict__.items(): |
| if k == 'default_args': |
| continue |
| |
| in_default = k in self.default_args |
| same_value = self.default_args.get(k) == v |
| |
| if in_default and same_value: |
| default[k] = v |
| else: |
| custom[k] = v |
|
|
| config = { |
| 'custom': custom, |
| 'default': default |
| } |
|
|
| return json.dumps(config, indent=4) |
| |
| def __repr__(self): |
| return self.__str__() |
| |
| def from_dict(self, dictionary): |
| for k, v in dictionary.items(): |
| setattr(self, k, v) |
| return self |
| |
| def from_args(self, args=sys.argv[1:]): |
| parser = argparse.ArgumentParser(description='GAN component analysis config') |
| parser.add_argument('--model', dest='model', type=str, default='StyleGAN', help='The network to analyze') |
| parser.add_argument('--layer', dest='layer', type=str, default='g_mapping', help='The layer to analyze') |
| parser.add_argument('--class', dest='output_class', type=str, default=None, help='Output class to generate (BigGAN: Imagenet, ProGAN: LSUN)') |
| parser.add_argument('--est', dest='estimator', type=str, default='ipca', help='The algorithm to use [pca, fbpca, cupca, spca, ica]') |
| parser.add_argument('--sparsity', type=float, default=1.0, help='Sparsity parameter of SPCA') |
| parser.add_argument('--video', dest='make_video', action='store_true', help='Generate output videos (MP4s)') |
| parser.add_argument('--batch', dest='batch_mode', action='store_true', help="Don't open windows, instead save results to file") |
| parser.add_argument('-b', dest='batch_size', type=int, default=None, help='Minibatch size, leave empty for automatic detection') |
| parser.add_argument('-c', dest='components', type=int, default=80, help='Number of components to keep') |
| parser.add_argument('-n', type=int, default=300_000, help='Number of examples to use in decomposition') |
| parser.add_argument('--use_w', action='store_true', help='Use W latent space (StyleGAN(2))') |
| parser.add_argument('--sigma', type=float, default=2.0, help='Number of stdevs to walk in visualize.py') |
| parser.add_argument('--inputs', type=str, default=None, help='Path to directory with named components') |
| parser.add_argument('--seed', type=int, default=None, help='Seed used in decomposition') |
| args = parser.parse_args(args) |
|
|
| return self.from_dict(args.__dict__) |