Anaconda vs. miniconda

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逝去的感伤
逝去的感伤 2020-11-27 09:57

In the Anaconda repository, there are two types of installers:

\"Anaconda installers\" and \"Miniconda installers\".

What

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  • 2020-11-27 10:00

    The 2 in Anaconda2 means that the main version of Python will be 2.x rather than the 3.x installed in Anaconda3. The current release has Python 2.7.13.

    The 4.4.0.1 is the version number of Anaconda. The current advertised version is 4.4.0 and I assume the .1 is a minor release or for other similar use. The Windows releases, which I use, just say 4.4.0 in the file name.

    Others have now explained the difference between Anaconda and Miniconda, so I'll skip that.

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  • 2020-11-27 10:08

    Per the original docs:

    Choose Anaconda if you:

    • Are new to conda or Python
    • Like the convenience of having Python and over 1500 scientific packages automatically installed at once
    • Have the time and disk space (a few minutes and 3 GB), and/or
    • Don’t want to install each of the packages you want to use individually.

    Choose Miniconda if you:

    • Do not mind installing each of the packages you want to use individually.
    • Do not have time or disk space to install over 1500 packages at once, and/or
    • Just want fast access to Python and the conda commands, and wish to sort out the other programs later.

    I use Miniconda myself. Anaconda is bloated. Many of the packages are never used and could still be easily installed if and when needed.

    Note that Conda is the package manager (e.g. conda list displays all installed packages in the environment), whereas Anaconda and Miniconda are distributions. A software distribution is a collection of packages, pre-built and pre-configured, that can be installed and used on a system. A package manager is a tool that automates the process of installing, updating, and removing packages.

    Anaconda is a full distribution of the central software in the PyData ecosystem, and includes Python itself along with the binaries for several hundred third-party open-source projects. Miniconda is essentially an installer for an empty conda environment, containing only Conda, its dependencies, and Python. Source.

    Once Conda is installed, you can then install whatever package you need from scratch along with any desired version of Python.

    2-4.4.0.1 is the version number for your Anaconda installation package. Strangely, it is not listed in their Old Package Lists.

    In April 2016, the Anaconda versioning jumped from 2.5 to 4.0 in order to avoid confusion with Python versions 2 & 3. Version 4.0 included the Anaconda Navigator.

    Release notes for subsequent versions can be found here.

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  • 2020-11-27 10:09

    Both Anaconda and miniconda use the conda package manager. The chief differece between between Anaconda and miniconda,however,is that

    The Anaconda distribution comes pre-loaded with all the packages while the miniconda distribution is just the management system without any pre-loaded packages. If one uses miniconda, one has to download individual packages and libraries separately.

    I personally use Anaconda distribution as I dont really have to worry much about individual package installations.

    A disadvantage of miniconda is that installing each individual package can take a long amount of time. Compared to that installing and using Anaconda takes a lot less time.

    However, there are some packages in anaconda (QtConsole, Glueviz,Orange3) that I have never had to use. I dont even know their purpose. So a disadvantage of anaconda is that it occupies more space than needed.

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  • 2020-11-27 10:17

    Miniconda gives you the Python interpreter itself, along with a command-line tool called conda which operates as a cross-platform package manager geared toward Python packages, similar in spirit to the apt or yum tools that Linux users might be familiar with.

    Anaconda includes both Python and conda, and additionally bundles a suite of other pre-installed packages geared toward scientific computing. Because of the size of this bundle, expect the installation to consume several gigabytes of disk space.

    Source: Jake VanderPlas's Python Data Science Handbook

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  • 2020-11-27 10:19

    Brief

    conda is both a command line tool, and a python package.

    Miniconda installer = Python + conda

    Anaconda installer = Python + conda + meta package anaconda

    meta Python pkg anaconda = about 160 Python pkgs for daily use in data science

    Anaconda installer = Miniconda installer + conda install anaconda

    Detail

    1. conda is a python manager and an environment manager, which makes it possible to

      • install package with conda install flake8
      • create an environment with any version of Python with conda create -n myenv python=3.6
    2. Miniconda installer = Python + conda

      conda, the package manager and environment manager, is a Python package. So Python is installed. Cause conda distribute Python interpreter with its own libraries/dependencies but not the existing ones on your operating system, other minimal dependencies like openssl, ncurses, sqlite, etc are installed as well.

      Basically, Miniconda is just conda and its minimal dependencies. And the environment where conda is installed is the "base" environment, which is previously called "root" environment.

    3. Anaconda installer = Python + conda + meta package anaconda

    4. meta Python package anaconda = about 160 Python pkgs for daily use in data science

      Meta packages, are packages that do NOT contain actual softwares and simply depend on other packages to be installed.

      Download an anaconda meta package from Anaconda Cloud and extract the content from it. The actual 160+ packages to be installed are listed in info/recipe/meta.yaml.

      package:
          name: anaconda
          version: '2019.07'
      build:
          ignore_run_exports:
              - '*'
          number: '0'
          pin_depends: strict
          string: py36_0
      requirements:
          build:
              - python 3.6.8 haf84260_0
          is_meta_pkg:
              - true
          run:
              - alabaster 0.7.12 py36_0
              - anaconda-client 1.7.2 py36_0
              - anaconda-project 0.8.3 py_0
              # ...
              - beautifulsoup4 4.7.1 py36_1
              # ...
              - curl 7.65.2 ha441bb4_0
              # ...
              - hdf5 1.10.4 hfa1e0ec_0
              # ...
              - ipykernel 5.1.1 py36h39e3cac_0
              - ipython 7.6.1 py36h39e3cac_0
              - ipython_genutils 0.2.0 py36h241746c_0
              - ipywidgets 7.5.0 py_0
              # ...
              - jupyter 1.0.0 py36_7
              - jupyter_client 5.3.1 py_0
              - jupyter_console 6.0.0 py36_0
              - jupyter_core 4.5.0 py_0
              - jupyterlab 1.0.2 py36hf63ae98_0
              - jupyterlab_server 1.0.0 py_0
              # ...
              - matplotlib 3.1.0 py36h54f8f79_0
              # ...
              - mkl 2019.4 233
              - mkl-service 2.0.2 py36h1de35cc_0
              - mkl_fft 1.0.12 py36h5e564d8_0
              - mkl_random 1.0.2 py36h27c97d8_0
              # ...
              - nltk 3.4.4 py36_0
              # ...
              - numpy 1.16.4 py36hacdab7b_0
              - numpy-base 1.16.4 py36h6575580_0
              - numpydoc 0.9.1 py_0
              # ...
              - pandas 0.24.2 py36h0a44026_0
              - pandoc 2.2.3.2 0
              # ...
              - pillow 6.1.0 py36hb68e598_0
              # ...
              - pyqt 5.9.2 py36h655552a_2
              # ...
              - qt 5.9.7 h468cd18_1
              - qtawesome 0.5.7 py36_1
              - qtconsole 4.5.1 py_0
              - qtpy 1.8.0 py_0
              # ...
              - requests 2.22.0 py36_0
              # ...
              - sphinx 2.1.2 py_0
              - sphinxcontrib 1.0 py36_1
              - sphinxcontrib-applehelp 1.0.1 py_0
              - sphinxcontrib-devhelp 1.0.1 py_0
              - sphinxcontrib-htmlhelp 1.0.2 py_0
              - sphinxcontrib-jsmath 1.0.1 py_0
              - sphinxcontrib-qthelp 1.0.2 py_0
              - sphinxcontrib-serializinghtml 1.1.3 py_0
              - sphinxcontrib-websupport 1.1.2 py_0
              - spyder 3.3.6 py36_0
              - spyder-kernels 0.5.1 py36_0
              # ...
      

      The pre-installed packages from meta pkg anaconda are mainly for web scraping and data science. Like requests, beautifulsoup, numpy, nltk, etc.

      If you have a Miniconda installed, conda install anaconda will make it same as an Anaconda installation, except that the installation folder names are different.

    5. Miniconda2 v.s. Miniconda. Anaconda2 v.s. Anaconda.

      2 means the bundled Python interpreter for conda in the "base" environment is Python 2, but not Python 3.

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  • 2020-11-27 10:20

    Anaconda or Miniconda?

    Choose Anaconda if you:

    1. Are new to conda or Python.

    2. Like the convenience of having Python and over 1,500 scientific packages automatically installed at once.

    3. Have the time and disk space---a few minutes and 3 GB.

    4. Do not want to individually install each of the packages you want to use.

    Choose Miniconda if you:

    1. Do not mind installing each of the packages you want to use individually.

    2. Do not have time or disk space to install over 1,500 packages at once.

    3. Want fast access to Python and the conda commands and you wish to sort out the other programs later.

    Source

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