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Here is the line of text:

SRC='999'

where 999 can be any three digits.

I need a grep command that will return me the 999. How do I do this?

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I'm trying this: egrep "SRC=\'([0-9]+)\'" /tmp/test/file which returns: SRC='112' But I just want this: 112 –  Derek Nov 6 '09 at 20:38
    
I'm using QShell, running on an iSeries. The regular expression part I've figured out, it's the extracting just part of the line that I need that has me stymied. –  Derek Nov 6 '09 at 20:45

8 Answers 8

up vote 3 down vote accepted

Here is how to do it using sed

grep SRC=\'.*\' | sed 's/SRC=.\(.*\)./\1/'
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Are the lines to match always in the format SRC='nnn' ? Then you could use

grep SRC | cut -d"'" -f2
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You can't do it with plain grep. As the man page on my box states: "grep - print lines matching a pattern" grep only prints lines, not part of lines.

I would recommend awk since it can do both the pattern matching and sub-line extracting:

awk -F\' ' /SRC/ {print $2}'
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Unfortunately I don't have awk on my system... –  Derek Nov 6 '09 at 20:21

just sed will do

$ echo SRC='999' | sed '/SRC/s/SRC=//'
999
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You can use the -o option on grep to return only the part of the string that matches the regex:

echo "SRC='999'" | grep -o -E '[0-9]{3}'
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Platform grep or general regular expression?

Regex

SRC\=\'(\d{3})\'
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why grep? How about..

substr("SRC='999'",6,3)
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This would be faster than running a regular expression, with the tradeoff that it would not handle any change in the format of the data (e.g. two digits instead of three). –  qid Nov 6 '09 at 20:09

depends on your platform / language.

in Ruby:

string = "SRC = '999'"

string.match(/([0-9]{3})/).to_s.to_i

will return an integer

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