Spaces:
Running
Running
initial import
Browse files- .gitignore +1 -0
- .vscode/settings.json +4 -0
- app.py +54 -0
- convert.py +112 -0
- requirements.txt +2 -0
.gitignore
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.env/
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.vscode/settings.json
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{
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"editor.formatOnSave": true,
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"python.formatting.provider": "black"
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}
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app.py
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import gradio as gr
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from convert import convert
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def run(token: str, model_id: str) -> str:
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if token == "" or model_id == "":
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return """
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### Invalid input 🐞
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Please fill a token and model_id.
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"""
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try:
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pr_url = convert(token=token, model_id=model_id)
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return f"""
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### Success 🔥
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Yay! This model was successfully converted and a PR was open using your token, here:
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{pr_url}
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"""
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except Exception as e:
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return f"""
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### Error 😢😢😢
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{e}
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"""
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DESCRIPTION = """
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The steps are the following:
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- Paste a read-access token from hf.co/settings/tokens. Read access is enough given that we will open a PR against the source repo.
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- Input a model id from the Hub
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- Click "Submit"
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- That's it! You'll get feedback if it works or not, and if it worked, you'll get the URL of the opened PR 🔥
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⚠️ For now only `pytorch_model.bin` files are supported but we'll extend in the future.
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"""
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demo = gr.Interface(
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title="Convert any model to Safetensors and open a PR",
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description=DESCRIPTION,
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allow_flagging="never",
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article="Check out the [Safetensors repo on GitHub](https://github.com/huggingface/safetensors)",
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inputs=[
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gr.Text(max_lines=1, label="your_hf_token"),
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gr.Text(max_lines=1, label="model_id"),
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],
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outputs=[gr.Markdown(label="output")],
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fn=run,
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)
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demo.launch()
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convert.py
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import argparse
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import json
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import os
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import torch
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from huggingface_hub import CommitOperationAdd, HfApi, hf_hub_download
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from safetensors.torch import save_file
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def rename(pt_filename) -> str:
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local = pt_filename.replace(".bin", ".safetensors")
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local = local.replace("pytorch_model", "model")
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return local
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def convert_multi(model_id) -> str:
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local_filenames = []
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try:
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filename = hf_hub_download(
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repo_id=model_id, filename="pytorch_model.bin.index.json"
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)
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with open(filename, "r") as f:
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data = json.load(f)
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filenames = set(data["weight_map"].values())
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for filename in filenames:
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cached_filename = hf_hub_download(repo_id=model_id, filename=filename)
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loaded = torch.load(cached_filename)
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local = rename(filename)
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save_file(loaded, local, metadata={"format": "pt"})
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local_filenames.append(local)
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index = "model.safetensors.index.json"
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with open(index, "w") as f:
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newdata = {k: v for k, v in data.items()}
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newmap = {k: rename(v) for k, v in data["weight_map"].items()}
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newdata["weight_map"] = newmap
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json.dump(newdata, f)
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local_filenames.append(index)
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api = HfApi()
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operations = [
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CommitOperationAdd(path_in_repo=local, path_or_fileobj=local)
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for local in local_filenames
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]
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return api.create_commit(
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repo_id=model_id,
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operations=operations,
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commit_message="Adding `safetensors` variant of this model",
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create_pr=True,
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)
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finally:
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for local in local_filenames:
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os.remove(local)
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def convert_single(model_id) -> str:
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local = "model.safetensors"
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try:
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filename = hf_hub_download(repo_id=model_id, filename="pytorch_model.bin")
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loaded = torch.load(filename)
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save_file(loaded, local, metadata={"format": "pt"})
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api = HfApi()
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return api.upload_file(
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path_or_fileobj=local,
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create_pr=True,
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path_in_repo=local,
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repo_id=model_id,
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)
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finally:
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os.remove(local)
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def convert(token: str, model_id: str) -> str:
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"""
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returns url to the PR
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"""
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api = HfApi(token=token)
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info = api.model_info(model_id)
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filenames = set(s.rfilename for s in info.siblings)
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if "pytorch_model.bin" in filenames:
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return convert_single(model_id)
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elif "pytorch_model.bin.index.json" in filenames:
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return convert_multi(model_id)
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raise ValueError("repo does not seem to have a pytorch_model in it")
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if __name__ == "__main__":
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DESCRIPTION = """
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Simple utility tool to convert automatically some weights on the hub to `safetensors` format.
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It is PyTorch exclusive for now.
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It works by downloading the weights (PT), converting them locally, and uploading them back
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as a PR on the hub.
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"""
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parser = argparse.ArgumentParser(description=DESCRIPTION)
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parser.add_argument(
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"model_id",
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type=str,
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help="The name of the model on the hub to convert. E.g. `gpt2` or `facebook/wav2vec2-base-960h`",
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)
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args = parser.parse_args()
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model_id = args.model_id
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api = HfApi()
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info = api.model_info(model_id)
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filenames = set(s.rfilename for s in info.siblings)
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if "pytorch_model.bin" in filenames:
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convert_single(model_id)
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else:
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convert_multi(model_id)
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requirements.txt
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git+https://github.com/huggingface/huggingface_hub@main
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safetensors
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