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I have this:

 echo 12345 | grep -o '[[:digit:]]\{1,4\}'

Which gives this:

1234
5

I understand whats happening. How do I stop grep from trying to continue matching after 1 successful match?

How do I get only

1234
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3 Answers

up vote 3 down vote accepted

Do you want grep to stop matching or do you only care about the first match. You could use head if the later is true...

`grep stuff | head -n 1` 

Grep is a line based util so the -m 1 flag tells grep to stop after it matches the first line which when combined with head is pretty good in practice.

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This works! But how do I really stop grep from matching after first match if found? Just curious. –  abc Mar 3 '12 at 3:41
    
-m does not stop grep from matching after 1st match is found. –  abc Mar 3 '12 at 3:42
    
At first I edited my answer to include the -m flag which is what you already had in your question, ug. Using -m 1 will limit the searching to just the first line found and head will filter which should be pretty good in practice. –  Andrew White Mar 3 '12 at 3:43
    
My question is for matching a pattern in a line only once. I removed -m 1 from my question. Can I stop grep from matching a pattern in a line after first match is found? I am just curious to know if this could be done. –  abc Mar 3 '12 at 3:46
    
I don't think you can. It's going to work on the entire line. Any particular reason you care? You could use perl if this is a show stopper for you. –  Andrew White Mar 3 '12 at 3:50
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Use sed instead of grep:

echo 12345 | sed -n '/^\([0-9]\{1,4\}\).*/s//\1/p'

This matches up to 4 digits at the beginning of the line, followed by anything, keeps just the digits, and prints them. The -n prevents lines from being printed otherwise. If the digit string might also appear mid-line, then you need a slightly more complex command.

In fact, ideally you'll use a sed with PCRE regular expressions since you really need a non-greedy match. However, up to a reasonable approximation, you can use: (A semi-solution to a considerably more complex problem...now removed!)

Since you want the first string of up to 4 digits on the line, simply use sed to remove any non-digits and then print the digit string:

echo abc12345 | sed -n '/^[^0-9]*\([0-9]\{1,4\}\).*/s//\1/p'

This matches a string of non-digits followed by 1-4 digits followed by anything, keeps just the digits, and prints them.

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sed 's/^[^0-9]*\([0-9]\{1,4\}\).*/\1/p;d' maybe a little less busy? –  potong Mar 3 '12 at 9:52
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You need to do the grouping: \(...\) followed by the exact number of occurrence: \{<n>\} to do the job:

maci:~ san$ echo 12345 | grep -o '\([[:digit:]]\)\{4\}'
1234

Hope it helps. Cheers!!

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