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I need to match numbers as long as it is not found between { and }.

Examples:

{1}  - should not match  
1 - should match
2 - should match
{91} - should not match
3 - match
0 - match
{1212} - should not match

I wrote this (?!{)[\d](?!})

and it correctly matches those numbers outside { and } however when there is more than 1 digit in {} such as {123}, then it matches 12 excluding the last digit.

share|improve this question
    
You need the "greedy" operator for the digit part. – arkascha Apr 25 '14 at 7:47
2  
Looking at the alerady posted answers it is clear that you should explain in more detail the context of your question. Are those numbers (like in your example) all alone on a new line one by one? Are they only surrounded by {} or by nothing at all? Or could there be other characters too? – SebastianH Apr 25 '14 at 8:16
    
Also: can the {} be nested? is 13} valid? – Pierre Arlaud Apr 25 '14 at 12:13
1  
how about just ^\d+$ ? It will do exactly what you need for the inputs you specified. – LordOfThePigs Apr 25 '14 at 12:31
    
@LordOfThePigs Good catch! Most posters here did not see this easy way out. This kinda proves that there is more to the problem than the OP reveales in his examples =) – SebastianH Apr 25 '14 at 13:43

You'd better go with:

\d+(?![^{]*})

Explanations:

\d+           # Any digits
(?![^{]*})    # Negative lookahead - demonstrating to not within curly braces 

Live demo

share|improve this answer
    
Could you elaborate on how the negative lookahead works with [^{]*? – Neftas Apr 25 '14 at 8:18
    
@Neftas Lookahead assertion isn't forced to have fixed width and so we can use quantifiers. That said, (?![^{]*}) alone, will look for any position not within brackets. – revo Apr 25 '14 at 8:26
    
So basically you're looking for a digit of length one or longer, if it finds that, the regex then continues to look for another opening curly brace {, and starts to backtrack to see if it can find a closing brace } adjacent to the digits. If it doesn't, it's a match, if it does, it's not. Very ingenious, thanks! :) – Neftas Apr 25 '14 at 8:31
2  
@Neftas Looking for opening curly brace { isn't started at a specific position. Lookahead - as being a lookaround - returns true whether it matches the positions. So it's not just the above regex I wrote!! You can achieve the same results with (?![^{]*})\d+ too. You're welcome! – revo Apr 25 '14 at 8:49
1  
It will fail 91} case, though OP doesn't have such sample. – Ulugbek Umirov Apr 25 '14 at 9:29

If you want to also exclude numbers having curly bracket on only one side, like {123, 123}, then you can use the following regex (negative lookbehind and negative lookahead are used):

(?<![{\d])\d+(?![}\d])

Regular expression visualization

Debuggex Demo

If you want to include numbers having curly bracket on only one side, you can use or condition:

(?<![{\d])\d+(?![}\d])|(?<={)\d+(?![}\d])|(?<![{\d])\d+(?=})

Regular expression visualization

Debuggex Demo

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Good thinking beyond the given examples =) – SebastianH Apr 25 '14 at 9:40

(I used javascript in this example)

This simple regex should show exactly what you don't want, so just check if it does not match this regex:

var strings = ['{1}', '1', '2', '{{91}', '3', '0', '{1212}'];
strings.map(function (str) {
    return !str.match(/(\{\d+\})/); 
}); // returns [false, true, true, false, true, true, false]
share|improve this answer
1  
I like this solution, because it does not require mind-boggling regexp statments for a seemingly trivial task. But this strongly depends on the context of the question if this solution is viable (see my comment on the question). Btw. you have written it in JS, but something like this is possible in every language. The basic concept is to transfer logic from the regex to the programming language - which often is a good idea :) – SebastianH Apr 25 '14 at 9:00

The following regexs will do that:

^(?!={)(\d+)(?!=})$ or ^(?!{)(\d+)(?!})$

{1}
1          Match
2          Match
{91}
3          Match
0          Match
{1212}

Demo

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I think the regexp should be ^(?!{)(\d+)(?!})$ (the = are superfluous). This only works with the ^$ anchors in place. – SebastianH Apr 25 '14 at 8:48
    
@SebastianH, Thank you. Answer updated. – sshashank124 Apr 25 '14 at 8:50

When it comes to regexp, simple is beautiful

^\d+$ 

No lookaheads or other complicated constructs. It's probably the simplest regexp that yields correct results for the sample inputs you provided.

share|improve this answer

maybe try this"

^(?!{)\d+(?!=})$
share|improve this answer
    
I wonder why everyone is using the superfluous = in negative lookarounds :) The syntax is (?=_) for positive lookahead and (?!_) for negative lookahead (where _ is my placeholder for the regex inside). Analogous for lookbehinds. – SebastianH Apr 25 '14 at 9:03

you should use this :

^(?!\{)(\d+)(?!\})$

it's your regex, but I added \ to escape { and a group (\d+) to get the data you want ;)

share|improve this answer
    
Wrong! This will match the 9 in {91}. – SebastianH Apr 25 '14 at 8:49
    
true but the pattern get a matches() rejected so it's not a problem. But change it to ^(?!\{)(\d+)(?!\})$ and you won't get this problem – Clad Clad Apr 25 '14 at 9:02
    
Correct now. But its depending on the ^$ anchors now. Lets see if the questioner will add further context. – SebastianH Apr 25 '14 at 9:05

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