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# general settings | |
name: train_GFPGANv1_512_simple | |
model_type: GFPGANModel | |
num_gpu: auto # officially, we use 4 GPUs | |
manual_seed: 0 | |
# dataset and data loader settings | |
datasets: | |
train: | |
name: FFHQ | |
type: FFHQDegradationDataset | |
# dataroot_gt: datasets/ffhq/ffhq_512.lmdb | |
dataroot_gt: datasets/ffhq/ffhq_512 | |
io_backend: | |
# type: lmdb | |
type: disk | |
use_hflip: true | |
mean: [0.5, 0.5, 0.5] | |
std: [0.5, 0.5, 0.5] | |
out_size: 512 | |
blur_kernel_size: 41 | |
kernel_list: ['iso', 'aniso'] | |
kernel_prob: [0.5, 0.5] | |
blur_sigma: [0.1, 10] | |
downsample_range: [0.8, 8] | |
noise_range: [0, 20] | |
jpeg_range: [60, 100] | |
# color jitter and gray | |
color_jitter_prob: 0.3 | |
color_jitter_shift: 20 | |
color_jitter_pt_prob: 0.3 | |
gray_prob: 0.01 | |
# If you do not want colorization, please set | |
# color_jitter_prob: ~ | |
# color_jitter_pt_prob: ~ | |
# gray_prob: 0.01 | |
# gt_gray: True | |
# data loader | |
use_shuffle: true | |
num_worker_per_gpu: 6 | |
batch_size_per_gpu: 3 | |
dataset_enlarge_ratio: 1 | |
prefetch_mode: ~ | |
val: | |
# Please modify accordingly to use your own validation | |
# Or comment the val block if do not need validation during training | |
name: validation | |
type: PairedImageDataset | |
dataroot_lq: datasets/faces/validation/input | |
dataroot_gt: datasets/faces/validation/reference | |
io_backend: | |
type: disk | |
mean: [0.5, 0.5, 0.5] | |
std: [0.5, 0.5, 0.5] | |
scale: 1 | |
# network structures | |
network_g: | |
type: GFPGANv1 | |
out_size: 512 | |
num_style_feat: 512 | |
channel_multiplier: 1 | |
resample_kernel: [1, 3, 3, 1] | |
decoder_load_path: experiments/pretrained_models/StyleGAN2_512_Cmul1_FFHQ_B12G4_scratch_800k.pth | |
fix_decoder: true | |
num_mlp: 8 | |
lr_mlp: 0.01 | |
input_is_latent: true | |
different_w: true | |
narrow: 1 | |
sft_half: true | |
network_d: | |
type: StyleGAN2Discriminator | |
out_size: 512 | |
channel_multiplier: 1 | |
resample_kernel: [1, 3, 3, 1] | |
# path | |
path: | |
pretrain_network_g: ~ | |
param_key_g: params_ema | |
strict_load_g: ~ | |
pretrain_network_d: ~ | |
resume_state: ~ | |
# training settings | |
train: | |
optim_g: | |
type: Adam | |
lr: !!float 2e-3 | |
optim_d: | |
type: Adam | |
lr: !!float 2e-3 | |
optim_component: | |
type: Adam | |
lr: !!float 2e-3 | |
scheduler: | |
type: MultiStepLR | |
milestones: [600000, 700000] | |
gamma: 0.5 | |
total_iter: 800000 | |
warmup_iter: -1 # no warm up | |
# losses | |
# pixel loss | |
pixel_opt: | |
type: L1Loss | |
loss_weight: !!float 1e-1 | |
reduction: mean | |
# L1 loss used in pyramid loss, component style loss and identity loss | |
L1_opt: | |
type: L1Loss | |
loss_weight: 1 | |
reduction: mean | |
# image pyramid loss | |
pyramid_loss_weight: 1 | |
remove_pyramid_loss: 50000 | |
# perceptual loss (content and style losses) | |
perceptual_opt: | |
type: PerceptualLoss | |
layer_weights: | |
# before relu | |
'conv1_2': 0.1 | |
'conv2_2': 0.1 | |
'conv3_4': 1 | |
'conv4_4': 1 | |
'conv5_4': 1 | |
vgg_type: vgg19 | |
use_input_norm: true | |
perceptual_weight: !!float 1 | |
style_weight: 50 | |
range_norm: true | |
criterion: l1 | |
# gan loss | |
gan_opt: | |
type: GANLoss | |
gan_type: wgan_softplus | |
loss_weight: !!float 1e-1 | |
# r1 regularization for discriminator | |
r1_reg_weight: 10 | |
net_d_iters: 1 | |
net_d_init_iters: 0 | |
net_d_reg_every: 16 | |
# validation settings | |
val: | |
val_freq: !!float 5e3 | |
save_img: true | |
metrics: | |
psnr: # metric name | |
type: calculate_psnr | |
crop_border: 0 | |
test_y_channel: false | |
# logging settings | |
logger: | |
print_freq: 100 | |
save_checkpoint_freq: !!float 5e3 | |
use_tb_logger: true | |
wandb: | |
project: ~ | |
resume_id: ~ | |
# dist training settings | |
dist_params: | |
backend: nccl | |
port: 29500 | |
find_unused_parameters: true | |