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In a bash script, how do I use a variable to create a specifically named zipped file? For example, I would like to do something like:

VERSION_STRING='1.7.3'
zip -r foo.$VERSION_STRING foo

Where I ideally end up with a file called foo.1.7.3.zip

It seems like I'm having 2 problems:

  1. the zip command is treating $VERSION_STRING like it's null or empty
  2. the . after foo also seems to be mucking it up
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3 Answers 3

up vote 3 down vote accepted

The following works fine here using bash 4.1.5:

#!/bin/bash

VERSION_STRING='1.7.3'
echo zip -r foo foo.$VERSION_STRING.zip

I've added the echo to see the actual command rather than run it. The script prints out

zip -r foo foo.1.7.3.zip
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thanks, echo-ing out the command showed me that my variable had a space in it, which was messing up the zip creation. –  Jared Henderson Mar 6 '12 at 19:10

you can use ${VERSION_STRING} to clearly wrap your variable name

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I think you have your zip inputs backwards. For me the following command:

zip -r foo.${VERSION_STRING}.zip foo

creates a valid zip file. Your command does not (at least with my version of zip).

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