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model: |
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base_learning_rate: 1.0e-04 |
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target: ldm.models.diffusion.ddpm.LatentDiffusion |
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params: |
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linear_start: 0.00085 |
|
linear_end: 0.0120 |
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num_timesteps_cond: 1 |
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log_every_t: 200 |
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timesteps: 1000 |
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first_stage_key: "image_target" |
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cond_stage_key: "image_cond" |
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image_size: 32 |
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channels: 4 |
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cond_stage_trainable: false |
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conditioning_key: hybrid |
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monitor: val/loss_simple_ema |
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scale_factor: 0.18215 |
|
|
|
scheduler_config: |
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target: ldm.lr_scheduler.LambdaLinearScheduler |
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params: |
|
warm_up_steps: [ 100 ] |
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cycle_lengths: [ 10000000000000 ] |
|
f_start: [ 1.e-6 ] |
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f_max: [ 1. ] |
|
f_min: [ 1. ] |
|
|
|
unet_config: |
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target: ldm.modules.diffusionmodules.openaimodel.UNetModel |
|
params: |
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image_size: 32 |
|
in_channels: 8 |
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out_channels: 4 |
|
model_channels: 320 |
|
attention_resolutions: [ 4, 2, 1 ] |
|
num_res_blocks: 2 |
|
channel_mult: [ 1, 2, 4, 4 ] |
|
num_heads: 8 |
|
use_spatial_transformer: True |
|
transformer_depth: 1 |
|
context_dim: 768 |
|
use_checkpoint: True |
|
legacy: False |
|
|
|
first_stage_config: |
|
target: ldm.models.autoencoder.AutoencoderKL |
|
params: |
|
embed_dim: 4 |
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monitor: val/rec_loss |
|
ddconfig: |
|
double_z: true |
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z_channels: 4 |
|
resolution: 256 |
|
in_channels: 3 |
|
out_ch: 3 |
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ch: 128 |
|
ch_mult: |
|
- 1 |
|
- 2 |
|
- 4 |
|
- 4 |
|
num_res_blocks: 2 |
|
attn_resolutions: [] |
|
dropout: 0.0 |
|
lossconfig: |
|
target: torch.nn.Identity |
|
|
|
cond_stage_config: |
|
target: ldm.modules.encoders.modules.FrozenCLIPImageEmbedder |
|
|
|
|
|
data: |
|
target: ldm.data.simple.ObjaverseDataModuleFromConfig |
|
params: |
|
root_dir: 'views_whole_sphere' |
|
batch_size: 192 |
|
num_workers: 16 |
|
total_view: 4 |
|
train: |
|
validation: False |
|
image_transforms: |
|
size: 256 |
|
|
|
validation: |
|
validation: True |
|
image_transforms: |
|
size: 256 |
|
|
|
|
|
lightning: |
|
find_unused_parameters: false |
|
metrics_over_trainsteps_checkpoint: True |
|
modelcheckpoint: |
|
params: |
|
every_n_train_steps: 5000 |
|
callbacks: |
|
image_logger: |
|
target: main.ImageLogger |
|
params: |
|
batch_frequency: 500 |
|
max_images: 32 |
|
increase_log_steps: False |
|
log_first_step: True |
|
log_images_kwargs: |
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use_ema_scope: False |
|
inpaint: False |
|
plot_progressive_rows: False |
|
plot_diffusion_rows: False |
|
N: 32 |
|
unconditional_guidance_scale: 3.0 |
|
unconditional_guidance_label: [""] |
|
|
|
trainer: |
|
benchmark: True |
|
val_check_interval: 5000000 |
|
num_sanity_val_steps: 0 |
|
accumulate_grad_batches: 1 |
|
|