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I have following string:

{"_id":"scheme_version","_rev":"4-cad1842a7646b4497066e09c3788e724","scheme_version":1234}

and I need to get value of "scheme version", which is 1234 in this example.

I have tried

grep -Eo "\"scheme_version\":(\w*)"

however it returns

"scheme_version":1234

How can I make it? I know I can add sed call, but I would prefer to do it with single grep.

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I don't think it's possible with only 'grep'. A couple of years ago I did a lot with string manipulation, often piping greps to stuff like 'sed', or 'cut'. I'd suggest you study 'piping' and the 'cut' command. –  Martin Stam Dec 22 '11 at 11:01
    
I don't use grep very often, but perhaps you can use a look-behind expression, as outlined in the accepted answer in stackoverflow.com/questions/1247812/…. –  Codie CodeMonkey Dec 22 '11 at 11:02

3 Answers 3

up vote 13 down vote accepted

This might work for you:

echo '{"_id":"scheme_version","_rev":"4-cad1842a7646b4497066e09c3788e724","scheme_version":1234}' |
sed -n 's/.*"scheme_version":\([^}]*\)}/\1/p'
1234

Sorry it's not grep, so disregard this solution if you like.

Or stick with grep and add:

grep -Eo "\"scheme_version\":(\w*)"| cut -d: -f2
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It seems it is best available option for me. –  Stipa Dec 22 '11 at 11:37

You'll need to use a look behind assertion so that it isn't included in the match:

grep -Po '(?<=scheme_version":)[0-9]+'

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Hmm I got grep: Support for the -P option is not compiled into this --disable-perl-regexp binary –  Stipa Dec 22 '11 at 11:27
3  
@Stipa Without PCRE support you cannot do what you want with grep as it does not support backreferences i.e. \1 –  SiegeX Dec 22 '11 at 11:33
1  
+1 -P perl great! –  kev Dec 22 '11 at 13:56

I would recommend that you use jq for the job. jq is a command-line JSON processor.

$ cat tmp
{"_id":"scheme_version","_rev":"4-cad1842a7646b4497066e09c3788e724","scheme_version":1234}

$ cat tmp | jq .scheme_version
1234
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