cyclegan_horse2zebra.yaml 2.7 KB
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epochs: 200
output_dir: output_dir
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find_unused_parameters: True
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model:
  name: CycleGANModel
  generator:
    name: ResnetGenerator
    output_nc: 3
    n_blocks: 9
    ngf: 64
    use_dropout: False
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    norm_type: instance
    input_nc: 3
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  discriminator:
    name: NLayerDiscriminator
    ndf: 64
    n_layers: 3
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    norm_type: instance
    input_nc: 3
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  cycle_criterion:
    name: L1Loss
  idt_criterion:
    name: L1Loss
    loss_weight: 0.5
  gan_criterion:
    name: GANLoss
    gan_mode: lsgan
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export_model:
  - {name: 'netG_A', inputs_num: 1}
  - {name: 'netG_B', inputs_num: 1}

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dataset:
  train:
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    name: UnpairedDataset
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    dataroot_a: data/horse2zebra/trainA
    dataroot_b: data/horse2zebra/trainB
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    num_workers: 0
    batch_size: 1
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    is_train: True
    max_size: inf
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    preprocess:
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      - name: LoadImageFromFile
        key: A
      - name: LoadImageFromFile
        key: B
      - name: Transforms
        input_keys: [A, B]
        pipeline:
          - name: Resize
            size: [286, 286]
            interpolation: 'bicubic' #cv2.INTER_CUBIC
            keys: ['image', 'image']
          - name: RandomCrop
            size: [256, 256]
            keys: ['image', 'image']
          - name: RandomHorizontalFlip
            prob: 0.5
            keys: ['image', 'image']
          - name: Transpose
            keys: ['image', 'image']
          - name: Normalize
            mean: [127.5, 127.5, 127.5]
            std: [127.5, 127.5, 127.5]
            keys: ['image', 'image']
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  test:
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    name: UnpairedDataset
    dataroot_a: data/horse2zebra/testA
    dataroot_b: data/horse2zebra/testB
    num_workers: 0
    batch_size: 1
    max_size: inf
    is_train: False
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    preprocess:
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      - name: LoadImageFromFile
        key: A
      - name: LoadImageFromFile
        key: B
      - name: Transforms
        input_keys: [A, B]
        pipeline:
          - name: Resize
            size: [256, 256]
            interpolation: 'bicubic' #cv2.INTER_CUBIC
            keys: ['image', 'image']
          - name: Transpose
            keys: ['image', 'image']
          - name: Normalize
            mean: [127.5, 127.5, 127.5]
            std: [127.5, 127.5, 127.5]
            keys: ['image', 'image']
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lr_scheduler:
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  name: LinearDecay
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  learning_rate: 0.0002
  start_epoch: 100
  decay_epochs: 100
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  # will get from real dataset
  iters_per_epoch: 1

optimizer:
  optimG:
    name: Adam
    net_names:
      - netG_A
      - netG_B
    beta1: 0.5
  optimD:
    name: Adam
    net_names:
      - netD_A
      - netD_B
    beta1: 0.5
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log_config:
  interval: 100
  visiual_interval: 500

snapshot_config:
  interval: 5
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validate:
  interval: 30000
  save_img: false
  metrics:
    fid: # metric name, can be arbitrary
        name: FID
        batch_size: 8