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Basically I have a very large text file and each line contains

tag=yyyyy;id=xxxxx;db_ref=zzzzz; 

What I want is to grep out the id, but the id can change in length and form, I was wondering if its possible to use grep -o and then grep for "id=" then extract everything that comes after it until the semicolon?

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6 Answers 6

up vote 2 down vote accepted

You could do:

$ grep -o 'id=[^;]*' file

And if you don't want to inlcude the id= part you can using positive look-behind:

$ grep -Po '(?<=id=)[^;]*' file
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try :

grep -Po "(?<=id=)[^;]*" file
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Via grep:

grep -o 'id=[^;]*'

Via awk:

awk -F';' '{ print $2}' testlog
id=xxxxx

edit: see sudo_O's answer for the look-behind. it's more to the point of your question, IMO.

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You could try this awk. It should also work if there are multiple id= entries per line and it would not give a false positive for ...;pid=blabla;...

awk '/^id=/' RS=\; file
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Try the following:

grep -oP 'id=\K[^;]*' file
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perl -lne 'print $1 if(/id=([^\;]*);/)' your_file

tested:

> echo "tag=yyyyy;id=xxxxx;db_ref=zzzzz; "|perl -lne 'print $1 if(/id=([^\;]*);/)'
xxxxx
>
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