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Is there any regex I can use to match blocks of exactly 10 digits? For instance, I have this:

/\d{10}(?!\d+)/g

And this matches 2154358383 when given 2154358383 fine, but is also matches 1213141516 when given 12345678910111213141516, which I don't want.

What I think I need is a look-behind assertion (in addition to my lookahead already in there), that checks to make sure the character preceding the match is not an integer, but I can't figure out how to do that.

I tried

/(?:[^\d]+)\d{10}(?!\d+)/g

But that broke my first match of 2154358383, which is bad.

How can I write this to only match groups of 10 integers (no more, no less) with unknown boundaries?

I should also note that I'm trying to extract these out of a much larger string, so ^ and $ are out of the question.

share|improve this question
3  
What do you mean by unknown boundaries? Should "abc1234567890def" match? – robert Jul 10 '12 at 19:49
    
Does it matter what it matches, or just that it matches in the first place? – robert Jul 10 '12 at 19:51
    
"unknown boundaries" in the sense that it's not wrapped in something predictable, like quotes or something... so that I could just match inside the quotes, or from the beginning and ending of the line, etc. Yes, your example abc1234567890def should match, but abc123456789012334567890def should not. – neezer Jul 10 '12 at 19:52
    
Amending my previous comment: the first given example should match as 1234567890, not as-is. – neezer Jul 10 '12 at 20:31
up vote 3 down vote accepted

Could you do something like:

([^\d]|^)(\d{10})([^\d]|$)

In other words, the beginning of the string or a non-digit, ten digits, then the end of the string or a non-digit. That should solve the cases you looked for above.

You can use the regex like this:

var regex = /([^\d]|^)(\d{10})([^\d]|$)/;
var match = regex.exec(s);
var digits = match[2];
share|improve this answer
    
This matches the lead and trailing character before and after the match, so abc1234567890def returns as c1234567890d. I tried this (?:[^\d]|^)(\d{10})(?:[^\d]|$), but I had the same problem. – neezer Jul 10 '12 at 20:30
    
Good point, edited to use a group. – Moishe Lettvin Jul 10 '12 at 20:37

This should work: ([^\d]|^)\d{10}([^\d]|$)

share|improve this answer
    
Ha, beat me to it! – Moishe Lettvin Jul 10 '12 at 19:54
    
Exactly the same. Pretty funny. – aquinas Jul 10 '12 at 19:56
    
Oops. Almost the same. Mine was missing a backslash in the last character group. Fixed. – aquinas Jul 10 '12 at 20:00

This should match numbers at the beginning of the string (the ^) or in the middle/end (the [^\d] and the (?!\d). If you care about the exact match and not just that it matches in the first place, you'll need to grab the first group in the match.

/(?:[^\d]|^)(\d{10})(?!\d)/g

This would be easier if JavaScript regular expressions supported lookbehind.

share|improve this answer
    
This still matches the leading character (not part of the match), so abc1234567890def comes back as c1234567890. I wouldn't think so, since you're wrapping it in (?:), though... thoughts? – neezer Jul 10 '12 at 20:28
1  
@neezer as I said, you need to grab the first group in the match rather than just using the match verbatim. See How do you access the matched groups in a javascript regex? for details on how to do this. – robert Jul 10 '12 at 20:39
    
Ahh, useful link. Thanks! – neezer Jul 10 '12 at 22:39

What about the next?

perl -nle 'print if /(\b|\D)(\d{10})(\D|\b)/' <<EOF
123456789
x123456789
123456789x
1234567890
x1234567890
1234567890x
12345678901
x12345678901
x12345678901x
EOF

will print only

1234567890
x1234567890
1234567890x
share|improve this answer

I know you said "no ^" but maybe it's okay if you use it like this?:

rx = /(?:^|\D)(\d{10})(?!\d)/g

Here's a quick test:

> val = '1234567890 sdkjsdkjfsl 2234567890 323456789000 4234567890'
'1234567890 sdkjsdkjfsl 2234567890 323456789000 4234567890'
> rx.exec(val)[1]
'1234567890'
> rx.exec(val)[1]
'2234567890'
> rx.exec(val)[1]
'4234567890'
share|improve this answer

Try this

var re = /(?:^|[^\d])(\d{10})(?:$|[^\d])/g

re.exec ( "2154358383")
//["2154358383", "2154358383"]
re.exec ( "12345678910111213141516" )
//null
re.exec ( "abc1234567890def" )
//["c1234567890d", "1234567890"]

val = '1234567890 sdkjsdkjfsl 2234567890 323456789000 4234567890';
re.exec ( val )
//["1234567890 ", "1234567890"]
re.exec ( val )
//[" 2234567890 ", "2234567890"]
re.exec ( val )
//[" 4234567890", "4234567890"]
re.exec ( val )
//null
share|improve this answer

Simple with lookbehind:

/(?<!\d)\d{10}(?!\d)/g
share|improve this answer
    
JS doesn't seem to support lookbehinds (?<!\d); doing that exits my tests with SyntaxError: Invalid regular expression: /(?<!\d)\d{10}(?!\d)/: Invalid group – neezer Jul 10 '12 at 19:57

i would cheat and do something like

if (myvar.toString().substring(1, 10) = "1234567890") ....

:)

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3  
That doesn't make any sense. Sorry. – Kobi Jul 10 '12 at 19:53
2  
Who upvoted this answer? – kapa Jul 10 '12 at 19:53
    
@Kobi maybe he's going for the Peer Pressure badge – robert Jul 10 '12 at 19:56
    
oh poop - come on, i even added a smilie face! I was saying I would cheat by converting it to a string and then comparing the first 10 digits to whatever i was comparing it to. If it wasn't always the first 10 digits, I could do a IndexOf() on it. Dang - didn't expect to get downvoted :( – Losbear Jul 10 '12 at 20:01
    
I think you've missed the point. Completely. It's 10 arbitrary digits. Not 10 digits he knows in advance. – Andrew Cheong Jul 10 '12 at 21:06

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