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AMT-G.yaml
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AMT-G.yaml
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exp_name: floloss1e-2_300epoch_bs24_lr1p5e-4
seed: 2023
epochs: 300
distributed: true
lr: 1.5e-4
lr_min: 2e-5
weight_decay: 0.0
resume_state: null
save_dir: work_dir
eval_interval: 1
network:
name: networks.AMT-G.Model
params:
corr_radius: 3
corr_lvls: 4
num_flows: 5
data:
train:
name: datasets.vimeo_datasets.Vimeo90K_Train_Dataset
params:
dataset_dir: data/vimeo_triplet
val:
name: datasets.vimeo_datasets.Vimeo90K_Test_Dataset
params:
dataset_dir: data/vimeo_triplet
train_loader:
batch_size: 24
num_workers: 12
val_loader:
batch_size: 24
num_workers: 3
logger:
use_wandb: true
resume_id: null
losses:
- {
name: losses.loss.CharbonnierLoss,
nickname: l_rec,
params: {
loss_weight: 1.0,
keys: [imgt_pred, imgt]
}
}
- {
name: losses.loss.TernaryLoss,
nickname: l_ter,
params: {
loss_weight: 1.0,
keys: [imgt_pred, imgt]
}
}
- {
name: losses.loss.MultipleFlowLoss,
nickname: l_flo,
params: {
loss_weight: 0.005,
keys: [flow0_pred, flow1_pred, flow]
}
}