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How can I capture group 1 of the pattern below with any of the following(sed, awk, perl) ?

Regex pattern is \[(.*)\] for the below line, I want to capture group 1, meaning anything between []

Processing record with rowkey [fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1] with these rules

Here is what I'm trying to achieve, above row is the simple input. Below is simple output:

fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1

Question Update :

Actual sample input is(sorry for ommiting didn't know it was necessary and bit more complex) :

Processing record with rowkey [fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1] with these rules [[COUNT_ALL]].
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2  
You have captured it by using the round brackets. It will be in $1 in perl, for instance. You need to make your question clearer: What are you trying to do with it next? –  Alex Mar 27 '12 at 0:26
1  
@Alex hi Alex I updated my question, it seems a bit more clear now –  Gandalf StormCrow Mar 27 '12 at 0:39

4 Answers 4

You're experiencing greediness issues.

Hence you're matching:

fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1] with these rules [[COUNT_ALL]

instead of:

fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1

Remember: .* matching is greedy. (matches the longest possibile span)

Possible solutions:

  • reducing greediness: (not on sed and awk IIRC)
    \[(.*?)\]

  • reducing greediness the old way:
    \[([^\]]*)\]

  • just matching word characters: ([A-Za-z_])
    \[(\w*)\]

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$ echo 'Processing record with rowkey [fdebae87f9b7bcb7f698a0723cd1474b3a84bbb1] with these rules' | command_bellowing

sed

$ sed -r 's/.*\[(.*)\].*/\1/'

gawk

$ gawk '{print gensub(/.*\[(.*)\].*/, "\\1", "g")}'

perl

$ perl -ne 's/.*\[(.*)\].*/\1/;print'
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As Alex said, you have captured it. If you want to get the result, try:

s/\[(.*)\]/$1/

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This might work for you:

sed 's/^[^[]*\[\([^]]*\).*/\1/' file
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