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GAMA-IT / extra_scripts /convert_pretrained_weights.py
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import os
import torch
def process_file(file_path):
state_dict = torch.load(file_path)
filtered_state_dict = {name: param for name, param in state_dict.items() if 'lora' in name or 'audio' in name}
print(f"Parameters in file {file_path}:")
for name in filtered_state_dict.keys():
print(name)
torch.save(filtered_state_dict, file_path[:-4] + '_trainable.bin')
print(file_path[:-4] + '_trainable.bin')
print('----------------------------------')
# Walk through the current directory and its subdirectories
count = 0
for dirpath, dirnames, filenames in os.walk('/fs/nexus-projects/brain_project/acl_sk_24/GAMA//llm/alpaca-lora-main/'):
for file in filenames:
if file == "pytorch_model.bin":
cur_target = os.path.join(dirpath, file)
if os.path.exists(cur_target[:-4] + '_trainable.bin') == False:
print(os.path.join(dirpath, file))
process_file(os.path.join(dirpath, file))
count +=1
print(count)