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train_SwinIR_SRx4_scratch.yml
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train_SwinIR_SRx4_scratch.yml
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# general settings
name: train_SwinIR_SRx4_scratch_P48W8_DIV2K_500k_B4G8
model_type: SwinIRModel
scale: 4
num_gpu: auto
manual_seed: 0
# dataset and data loader settings
datasets:
train:
name: DIV2K
type: PairedImageDataset
dataroot_gt: datasets/DF2K/DIV2K_train_HR_sub
dataroot_lq: datasets/DF2K/DIV2K_train_LR_bicubic_X4_sub
meta_info_file: basicsr/data/meta_info/meta_info_DIV2K800sub_GT.txt
filename_tmpl: '{}'
io_backend:
type: disk
gt_size: 192
use_hflip: true
use_rot: true
# data loader
num_worker_per_gpu: 6
batch_size_per_gpu: 4
dataset_enlarge_ratio: 1
prefetch_mode: ~
val:
name: Set5
type: PairedImageDataset
dataroot_gt: datasets/Set5/GTmod12
dataroot_lq: datasets/Set5/LRbicx4
io_backend:
type: disk
# network structures
network_g:
type: SwinIR
upscale: 4
in_chans: 3
img_size: 48
window_size: 8
img_range: 1.
depths: [6, 6, 6, 6, 6, 6]
embed_dim: 180
num_heads: [6, 6, 6, 6, 6, 6]
mlp_ratio: 2
upsampler: 'pixelshuffle'
resi_connection: '1conv'
# path
path:
pretrain_network_g: ~
strict_load_g: true
resume_state: ~
# training settings
train:
ema_decay: 0.999
optim_g:
type: Adam
lr: !!float 2e-4
weight_decay: 0
betas: [0.9, 0.99]
scheduler:
type: MultiStepLR
milestones: [250000, 400000, 450000, 475000]
gamma: 0.5
total_iter: 500000
warmup_iter: -1 # no warm up
# losses
pixel_opt:
type: L1Loss
loss_weight: 1.0
reduction: mean
# validation settings
val:
val_freq: !!float 5e3
save_img: false
metrics:
psnr: # metric name, can be arbitrary
type: calculate_psnr
crop_border: 4
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