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setup.py
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# import setuptools
# version={}
# with open("./jVMC/version.py") as fp:
# exec(fp.read(), version)
# with open("README.md", "r") as fh:
# long_description = fh.read()
# DEFAULT_DEPENDENCIES = ["setuptools", "wheel", "numpy>=2", "openfermion", "jax>=0.4.12,<=0.4.31", "jaxlib>=0.4.12,<=0.4.31", "flax>=0.7.0", "mpi4py", "h5py", "PyYAML", "matplotlib", "scipy"] # "scipy<1.13"] # Scipy version restricted, because jax is currently incompatible with new function namespace scipy.sparse.tril
# #CUDA_DEPENDENCIES = ["setuptools", "wheel", "numpy", "jax[cuda]>=0.2.11,<=0.2.25", "flax>=0.3.6,<=0.3.6", "mpi4py", "h5py"]
# DEV_DEPENDENCIES = DEFAULT_DEPENDENCIES + ["sphinx", "mock", "sphinx_rtd_theme", "pytest", "pytest-mpi"]
# setuptools.setup(
# name='jVMC',
# version=version['__version__'],
# author="Markus Schmitt, Moritz Reh",
# author_email="[email protected]",
# description="jVMC: Versatile and performant variational Monte Carlo",
# long_description=long_description,
# long_description_content_type="text/markdown",
# url="https://jvmc.readthedocs.io/en/latest/#",
# packages=setuptools.find_packages(),
# install_requires=DEFAULT_DEPENDENCIES,
# extras_require={
# # "cuda": CUDA_DEPENDENCIES
# "dev": DEV_DEPENDENCIES
# },
# classifiers=[
# "Programming Language :: Python :: 3",
# "License :: OSI Approved :: MIT License",
# "Operating System :: OS Independent",
# ],
# )
from setuptools import setup
setup()