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I can't get around this for quite sometime now. As I read along manuals and tutorials I'm getting more confused. I want an if statement with the following logic:

if [ -n $drupal_version ] && [[ "$drupal_version" =~ DRUPAL-[6-9]-[1-9][1-9] ]]; then

but I can't get it to work properly.

When the script is evaluated using the "bash -x ... " script construct, works ok but when is run as a regular script my expression is not evaluated (eventhough the above condition should be met the else part is run).

Could you provide any help?

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What version of Bash? – Dennis Williamson Mar 16 '10 at 11:42

2 Answers 2

you can use case/esac, no regex. can be used in bash <3.2

if [ -n "$drupal_version" ] ;then
  case "$drupal_version" in
      echo "found"
      echo "version not correct"

however, if you want regex, note it's =~ not =

[[ $drupal_version =~ DRUPAL-[6-9]-[1-9][1-9] ]] && echo "found"
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the case approach is an interesting one. The use of "=" is a typo from my part, in my code I use "=~'. Is there a problem when mixing single brackets [ with double brackets [[ in the same if statement? – Tassos Mar 16 '10 at 9:42
no, there's no problem, but there are some differences between using ] and ]]. if you use single ], quote your variables. you can see… – ghostdog74 Mar 16 '10 at 10:05

Thank you all for your replies. The double brackets ]] are a construct specific for bash which in turn requires the first line to your script pointing to #!/bin/bash instead of #!/bin/sh that mine did. Changed that line and everything works.

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