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I want to write a script in a zc.buildout recipe, but the script needs to have access to buildout.cfg.

I know how to create a buildout recipe (which has access to its configuration) and how to create a buildout script, but I don't know how the script could read the config.

  • Is there a way that the script receive the configuration from buildout.cfg?
  • Or should it open the file by itself and parse the config?
  • In the last case, what is the best way to get the path? what's the best way to parse it?

Thanks in advance.

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What do you mean by script here? A bin/script command generated by a recipe, or a script run as part of a recipe install or update call? –  Martijn Pieters Jan 23 at 14:55
    
If the first, this sounds very much like an XY problem; can you tell us more about what you are trying to do? –  Martijn Pieters Jan 23 at 14:56
    
Add a bin/script. The idea is to ease the deployment with a command. At certain point the user will type bin/deploy and the script will visit certain src/ folders and execute git commands. But I want to be able to configure which folders, so I though that I could put the config in the same buildout section that creates the script. –  jdinuncio Jan 23 at 21:57
    
You could use a template (collective.recipe.template), you can pull in any buildout value you'd like with those. You can also create a console script in a setup.py script, and give it initialization code in a zc.recipe.egg part. –  Martijn Pieters Jan 23 at 22:56

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