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# This powershell script will create a model using the fine tuning dreambooth method. It will require landscape, | |
# portrait and square images. | |
# | |
# Adjust the script to your own needs | |
# Sylvia Ritter | |
# variable values | |
$pretrained_model_name_or_path = "D:\models\v1-5-pruned-mse-vae.ckpt" | |
$train_dir = "D:\dreambooth\train_sylvia_ritter\raw_data" | |
$landscape_image_num = 4 | |
$portrait_image_num = 25 | |
$square_image_num = 2 | |
$learning_rate = 1e-6 | |
$dataset_repeats = 120 | |
$train_batch_size = 4 | |
$epoch = 1 | |
$save_every_n_epochs=1 | |
$mixed_precision="fp16" | |
$num_cpu_threads_per_process=6 | |
$landscape_folder_name = "landscape-pp" | |
$landscape_resolution = "832,512" | |
$portrait_folder_name = "portrait-pp" | |
$portrait_resolution = "448,896" | |
$square_folder_name = "square-pp" | |
$square_resolution = "512,512" | |
# You should not have to change values past this point | |
$landscape_data_dir = $train_dir + "\" + $landscape_folder_name | |
$portrait_data_dir = $train_dir + "\" + $portrait_folder_name | |
$square_data_dir = $train_dir + "\" + $square_folder_name | |
$landscape_output_dir = $train_dir + "\model-l" | |
$portrait_output_dir = $train_dir + "\model-lp" | |
$square_output_dir = $train_dir + "\model-lps" | |
$landscape_repeats = $landscape_image_num * $dataset_repeats | |
$portrait_repeats = $portrait_image_num * $dataset_repeats | |
$square_repeats = $square_image_num * $dataset_repeats | |
$landscape_mts = [Math]::Ceiling($landscape_repeats / $train_batch_size * $epoch) | |
$portrait_mts = [Math]::Ceiling($portrait_repeats / $train_batch_size * $epoch) | |
$square_mts = [Math]::Ceiling($square_repeats / $train_batch_size * $epoch) | |
# Write-Output $landscape_repeats | |
.\venv\Scripts\activate | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$pretrained_model_name_or_path ` | |
--train_data_dir=$landscape_data_dir ` | |
--output_dir=$landscape_output_dir ` | |
--resolution=$landscape_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$landscape_mts ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$dataset_repeats ` | |
--save_half | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$landscape_output_dir"\last.ckpt" ` | |
--train_data_dir=$portrait_data_dir ` | |
--output_dir=$portrait_output_dir ` | |
--resolution=$portrait_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$portrait_mts ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$dataset_repeats ` | |
--save_half | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$portrait_output_dir"\last.ckpt" ` | |
--train_data_dir=$square_data_dir ` | |
--output_dir=$square_output_dir ` | |
--resolution=$square_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$square_mts ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$dataset_repeats ` | |
--save_half | |
# 2nd pass at half the dataset repeat value | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$square_output_dir"\last.ckpt" ` | |
--train_data_dir=$landscape_data_dir ` | |
--output_dir=$landscape_output_dir"2" ` | |
--resolution=$landscape_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$([Math]::Ceiling($landscape_mts/2)) ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$([Math]::Ceiling($dataset_repeats/2)) ` | |
--save_half | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$landscape_output_dir"2\last.ckpt" ` | |
--train_data_dir=$portrait_data_dir ` | |
--output_dir=$portrait_output_dir"2" ` | |
--resolution=$portrait_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$([Math]::Ceiling($portrait_mts/2)) ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$([Math]::Ceiling($dataset_repeats/2)) ` | |
--save_half | |
accelerate launch --num_cpu_threads_per_process $num_cpu_threads_per_process train_db.py ` | |
--pretrained_model_name_or_path=$portrait_output_dir"2\last.ckpt" ` | |
--train_data_dir=$square_data_dir ` | |
--output_dir=$square_output_dir"2" ` | |
--resolution=$square_resolution ` | |
--train_batch_size=$train_batch_size ` | |
--learning_rate=$learning_rate ` | |
--max_train_steps=$([Math]::Ceiling($square_mts/2)) ` | |
--use_8bit_adam ` | |
--xformers ` | |
--mixed_precision=$mixed_precision ` | |
--cache_latents ` | |
--save_every_n_epochs=$save_every_n_epochs ` | |
--fine_tuning ` | |
--dataset_repeats=$([Math]::Ceiling($dataset_repeats/2)) ` | |
--save_half | |