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setup.py
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setup.py
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import os
import sys
from setuptools import find_packages, setup
sys.path.insert(0, os.path.abspath(os.path.dirname(__file__)))
from utils.version_extractor import extract_version_info # noqa isort:skip
# load version info for the package
package_path = os.path.join(
os.path.dirname(os.path.realpath(__file__)), "src", "llmcompressor"
)
version_info = extract_version_info(package_path)
if version_info.build_type == "release":
package_name = "llmcompressor"
elif version_info.build_type == "dev":
package_name = "llmcompressor-dev"
elif version_info.build_type == "nightly":
package_name = "llmcompressor-nightly"
else:
raise ValueError(f"Unsupported build type {version_info.build_type}")
setup(
name=package_name,
version=version_info.version,
author="Neuralmagic, Inc.",
author_email="[email protected]",
description=(
"A library for compressing large language models utilizing the "
"latest techniques and research in the field for both "
"training aware and post training techniques. "
"The library is designed to be flexible and easy to use on top of "
"PyTorch and HuggingFace Transformers, allowing for quick experimentation."
),
long_description=open("README.md", "r", encoding="utf-8").read(),
long_description_content_type="text/markdown",
keywords=(
"llmcompressor, llms, large language models, transformers, pytorch, "
"huggingface, compressors, compression, quantization, pruning, "
"sparsity, optimization, model optimization, model compression, "
),
license="Apache",
url="https://github.com/neuralmagic/llm-compressor",
include_package_data=True,
package_dir={"": "src"},
packages=find_packages(
"src", include=["llmcompressor", "llmcompressor.*"], exclude=["*.__pycache__.*"]
),
install_requires=[
"loguru",
"pyyaml>=5.0.0",
"numpy>=1.17.0,<2.0",
"requests>=2.0.0",
"tqdm>=4.0.0",
"click>=7.1.2,!=8.0.0", # 8.0.0 blocked due to reported bug
"torch>=1.7.0",
"transformers>4.0,<5.0",
"datasets",
"accelerate>=0.20.3",
"pynvml==11.5.3",
"compressed-tensors"
if version_info.build_type == "release"
else "compressed-tensors-nightly",
],
extras_require={
"dev": [
# testing framework
"pytest>=6.0.0",
"pytest-mock>=3.6.0",
"pytest-rerunfailures>=13.0",
"parameterized",
# example test dependencies
"beautifulsoup4~=4.12.3",
"cmarkgfm~=2024.1.14",
"trl>=0.10.1",
# linting, formatting, and type checking
"black~=24.4.2",
"isort~=5.13.2",
"mypy~=1.10.0",
"ruff~=0.4.8",
"flake8~=7.0.0",
# pre commit hooks
"pre-commit",
]
},
entry_points={
"console_scripts": [
"llmcompressor.transformers.text_generation.apply=llmcompressor.transformers.finetune.text_generation:apply", # noqa 501
"llmcompressor.transformers.text_generation.compress=llmcompressor.transformers.finetune.text_generation:apply", # noqa 501
"llmcompressor.transformers.text_generation.train=llmcompressor.transformers.finetune.text_generation:train", # noqa 501
"llmcompressor.transformers.text_generation.finetune=llmcompressor.transformers.finetune.text_generation:train", # noqa 501
"llmcompressor.transformers.text_generation.eval=llmcompressor.transformers.finetune.text_generation:eval", # noqa 501
"llmcompressor.transformers.text_generation.oneshot=llmcompressor.transformers.finetune.text_generation:oneshot", # noqa 501
]
},
python_requires=">=3.8",
classifiers=[
"Development Status :: 5 - Production/Stable",
"Programming Language :: Python :: 3",
"Programming Language :: Python :: 3 :: Only",
"Intended Audience :: Developers",
"Intended Audience :: Education",
"Intended Audience :: Information Technology",
"Intended Audience :: Science/Research",
"License :: OSI Approved :: Apache Software License",
"Operating System :: POSIX :: Linux",
"Topic :: Scientific/Engineering",
"Topic :: Scientific/Engineering :: Artificial Intelligence",
"Topic :: Scientific/Engineering :: Mathematics",
"Topic :: Software Development",
"Topic :: Software Development :: Libraries :: Python Modules",
],
)