86 lines
2.2 KiB
Python
86 lines
2.2 KiB
Python
from typing import List, Optional
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import os
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import subprocess
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import logging
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logger = logging.getLogger(__name__)
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def get_hash_from_bucket(
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bucket_uri: str, s3_sync_args: Optional[List[str]] = None
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) -> str:
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s3_sync_args = s3_sync_args or []
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subprocess.run(
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["aws", "s3", "cp", "--quiet"]
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+ s3_sync_args
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+ [os.path.join(bucket_uri, "refs", "main"), "."],
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check=True,
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)
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with open(os.path.join(".", "main"), "r") as f:
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f_hash = f.read().strip()
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return f_hash
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def get_checkpoint_and_refs_dir(
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model_id: str,
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bucket_uri: str,
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s3_sync_args: Optional[List[str]] = None,
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mkdir: bool = False,
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) -> str:
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from transformers.utils.hub import TRANSFORMERS_CACHE
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f_hash = get_hash_from_bucket(bucket_uri, s3_sync_args)
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path = os.path.join(TRANSFORMERS_CACHE, f"models--{model_id.replace('/', '--')}")
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refs_dir = os.path.join(path, "refs")
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checkpoint_dir = os.path.join(path, "snapshots", f_hash)
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if mkdir:
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os.makedirs(refs_dir, exist_ok=True)
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os.makedirs(checkpoint_dir, exist_ok=True)
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return checkpoint_dir, refs_dir
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def get_download_path(model_id: str):
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from transformers.utils.hub import TRANSFORMERS_CACHE
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path = os.path.join(TRANSFORMERS_CACHE, f"models--{model_id.replace('/', '--')}")
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return path
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def download_model(
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model_id: str,
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bucket_uri: str,
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s3_sync_args: Optional[List[str]] = None,
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tokenizer_only: bool = False,
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) -> None:
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"""
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Download a model from an S3 bucket and save it in TRANSFORMERS_CACHE for
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seamless interoperability with Hugging Face's Transformers library.
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The downloaded model may have a 'hash' file containing the commit hash corresponding
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to the commit on Hugging Face Hub.
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"""
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s3_sync_args = s3_sync_args or []
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path = get_download_path(model_id)
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cmd = (
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["aws", "s3", "sync"]
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+ s3_sync_args
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+ (["--exclude", "*", "--include", "*token*"] if tokenizer_only else [])
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+ [bucket_uri, path]
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)
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print(f"RUN({cmd})")
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subprocess.run(cmd)
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print("done")
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def get_mirror_link(model_id: str) -> str:
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return f"s3://llama-2-weights/models--{model_id.replace('/', '--')}"
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