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@BedirYilmaz
Created March 4, 2020 23:44
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One of my new environments that causes CSRNet training to be 5x slower than usual
name: torch
channels:
- pytorch
- defaults
dependencies:
- _libgcc_mutex=0.1=main
- astroid=2.3.3=py38_0
- attrs=19.3.0=py_0
- backcall=0.1.0=py38_0
- blas=1.0=mkl
- bleach=3.1.0=py_0
- ca-certificates=2020.1.1=0
- certifi=2019.11.28=py38_0
- cudatoolkit=10.1.243=h6bb024c_0
- cycler=0.10.0=py38_0
- dbus=1.13.12=h746ee38_0
- decorator=4.4.1=py_0
- defusedxml=0.6.0=py_0
- entrypoints=0.3=py38_0
- expat=2.2.6=he6710b0_0
- fontconfig=2.13.0=h9420a91_0
- freetype=2.9.1=h8a8886c_1
- glib=2.63.1=h5a9c865_0
- gmp=6.1.2=h6c8ec71_1
- gst-plugins-base=1.14.0=hbbd80ab_1
- gstreamer=1.14.0=hb453b48_1
- h5py=2.10.0=py38h7918eee_0
- hdf5=1.10.4=hb1b8bf9_0
- icu=58.2=h9c2bf20_1
- importlib_metadata=1.5.0=py38_0
- intel-openmp=2020.0=166
- ipykernel=5.1.4=py38h39e3cac_0
- ipython=7.12.0=py38h5ca1d4c_0
- ipython_genutils=0.2.0=py38_0
- ipywidgets=7.5.1=py_0
- isort=4.3.21=py38_0
- jedi=0.16.0=py38_0
- jinja2=2.11.1=py_0
- jpeg=9b=h024ee3a_2
- jsonschema=3.2.0=py38_0
- jupyter=1.0.0=py38_7
- jupyter_client=5.3.4=py38_0
- jupyter_console=6.1.0=py_0
- jupyter_core=4.6.1=py38_0
- kiwisolver=1.0.1=py38he6710b0_0
- lazy-object-proxy=1.4.3=py38h7b6447c_0
- ld_impl_linux-64=2.33.1=h53a641e_7
- libedit=3.1.20181209=hc058e9b_0
- libffi=3.2.1=hd88cf55_4
- libgcc-ng=9.1.0=hdf63c60_0
- libgfortran-ng=7.3.0=hdf63c60_0
- libpng=1.6.37=hbc83047_0
- libsodium=1.0.16=h1bed415_0
- libstdcxx-ng=9.1.0=hdf63c60_0
- libtiff=4.1.0=h2733197_0
- libuuid=1.0.3=h1bed415_2
- libxcb=1.13=h1bed415_1
- libxml2=2.9.9=hea5a465_1
- markupsafe=1.1.1=py38h7b6447c_0
- matplotlib=3.1.3=py38_0
- matplotlib-base=3.1.3=py38hef1b27d_0
- mccabe=0.6.1=py38_1
- mistune=0.8.4=py38h7b6447c_1000
- mkl=2020.0=166
- mkl-service=2.3.0=py38he904b0f_0
- mkl_fft=1.0.15=py38ha843d7b_0
- mkl_random=1.1.0=py38h962f231_0
- nbconvert=5.6.1=py38_0
- nbformat=5.0.4=py_0
- ncurses=6.2=he6710b0_0
- ninja=1.9.0=py38hfd86e86_0
- notebook=6.0.3=py38_0
- numpy=1.18.1=py38h4f9e942_0
- numpy-base=1.18.1=py38hde5b4d6_1
- olefile=0.46=py_0
- openssl=1.1.1d=h7b6447c_4
- pandoc=2.2.3.2=0
- pandocfilters=1.4.2=py38_1
- parso=0.6.1=py_0
- pcre=8.43=he6710b0_0
- pexpect=4.8.0=py38_0
- pickleshare=0.7.5=py38_1000
- pillow=7.0.0=py38hb39fc2d_0
- pip=20.0.2=py38_1
- prometheus_client=0.7.1=py_0
- prompt_toolkit=3.0.3=py_0
- ptyprocess=0.6.0=py38_0
- pygments=2.5.2=py_0
- pylint=2.4.4=py38_0
- pyparsing=2.4.6=py_0
- pyqt=5.9.2=py38h05f1152_4
- pyrsistent=0.15.7=py38h7b6447c_0
- python=3.8.1=h0371630_1
- python-dateutil=2.8.1=py_0
- pytorch=1.4.0=py3.8_cuda10.1.243_cudnn7.6.3_0
- pyzmq=18.1.1=py38he6710b0_0
- qt=5.9.7=h5867ecd_1
- qtconsole=4.6.0=py_1
- readline=7.0=h7b6447c_5
- scipy=1.4.1=py38h0b6359f_0
- send2trash=1.5.0=py38_0
- setuptools=45.2.0=py38_0
- sip=4.19.13=py38he6710b0_0
- six=1.14.0=py38_0
- sqlite=3.31.1=h7b6447c_0
- terminado=0.8.3=py38_0
- testpath=0.4.4=py_0
- tk=8.6.8=hbc83047_0
- torchvision=0.5.0=py38_cu101
- tornado=6.0.3=py38h7b6447c_3
- tqdm=4.42.1=py_0
- traitlets=4.3.3=py38_0
- wcwidth=0.1.8=py_0
- webencodings=0.5.1=py38_1
- wheel=0.34.2=py38_0
- widgetsnbextension=3.5.1=py38_0
- wrapt=1.11.2=py38h7b6447c_0
- xz=5.2.4=h14c3975_4
- zeromq=4.3.1=he6710b0_3
- zipp=2.2.0=py_0
- zlib=1.2.11=h7b6447c_3
- zstd=1.3.7=h0b5b093_0
- pip:
- albumentations==0.4.3
- chardet==3.0.4
- idna==2.9
- imageio==2.8.0
- imgaug==0.2.6
- jsonpatch==1.25
- jsonpointer==2.0
- networkx==2.4
- opencv-python==4.2.0.32
- protobuf==3.11.3
- pywavelets==1.1.1
- pyyaml==5.3
- requests==2.23.0
- scikit-image==0.16.2
- tensorboardx==2.0
- torchfile==0.1.0
- urllib3==1.25.8
- visdom==0.1.8.9
- websocket-client==0.57.0
prefix: /home/bedir/anaconda3/envs/torch
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