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For example, I have a string: test1@test2.

I need to get the test2 part of this string. How can I do this with bash?

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1  
possible duplicate of String Manipulation in Bash . . . Removing leading section –  Kaz May 18 '12 at 21:09

4 Answers 4

up vote 9 down vote accepted

Using Parameter Expansion:

str='test1@test2'
echo "${str#*@}"
  1. The # character says Remove the smallest prefix of the expansion matching the pattern.
  2. The % character means Remove the smallest suffix of the expansion matching the pattern. (So you can do "${str%@*}" to get the "test1" part.)
  3. The / character means Remove the smallest and first substring of the expansion matching the following pattern. Bash has it, but it's not POSIX.

If you double the pattern character it matches greedily.

  1. ## means Remove the largest prefix of the expansion matching the pattern.
  2. %% means Remove the largest suffix of the expansion matching the pattern.
  3. // means Remove all substrings of the expansion matching the pattern.
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How do I change this to print test1 instead of test2? –  Chris F Nov 5 '13 at 21:30
    
@ChrisF I've expanded my answer to show how to do that. –  kojiro Nov 5 '13 at 23:48

Another way in Bash:

IFS=@ read left right <<< "$string"
echo "$right"
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echo "test1@test2" | awk -F "@" '{print $2}'
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Or, in bash, awk -F "@" '{print $2}' <<< "test1@test2" –  kojiro May 17 '12 at 20:28
echo "test1@test2" | sed 's/.*@//'
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Or, in bash, xxx="test1@test2"; sed 's/.*@//' <<< $x. –  Jonathan Leffler May 17 '12 at 15:20
    
@JonathanLeffler I know what you mean here, but aren't you missing some xes? –  kojiro Nov 5 '13 at 23:49
    
Hmm...yes, it looks like 'dos equis' escaped. It's a little late to be editing the comment... –  Jonathan Leffler Nov 6 '13 at 4:19

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