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I currently use this regex:

(\d+)

the problem that i can get 2 strings:

"2112343 and alot of 4.99"

OR

"4.99 and alot of 2112343 "

I get this from both:

[2112343, 4, 99]

I need to get only the 2112343... How can i achieve this?

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2  
It does get "numbers only". Perhaps you mean to rephrase the title? –  user166390 Jun 30 '12 at 19:32
    
(?:^| )(\d+)(?:$| ) –  Joel Cornett Jun 30 '12 at 19:34
    
@pst To be exact, it does only get sequences of digits, hence \d. –  Gumbo Jun 30 '12 at 19:37
    
if you know what you're finding - why do you need to find it? –  Jon Clements Jun 30 '12 at 19:45
    
\d stands for a digit and does not include the decimal point. –  Olivier Jacot-Descombes Jun 30 '12 at 19:48

6 Answers 6

up vote 3 down vote accepted

Using lookaround, you can restrict your capturing to only digits which are not surrounded by other digits or decimal points:

(?<![0-9.])(\d+)(?![0-9.])

Alternatively, if you want to only match stand-alone numbers (e.g. if you don't want to match the 123 in abc123def):

(?<!\S)\d+(?!\S)
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1  
So 0.1234.0 -> ? –  user166390 Jun 30 '12 at 19:34
1  
Would not be matched, intentionally. –  Amber Jun 30 '12 at 19:35
    
@pst 1 and 4 are in [0-9.] and thus disallowed from being to the left and right of the matched group due to the lookarounds. –  Amber Jun 30 '12 at 19:38
    
It matches hello 1234 world -> 1234 because whitespace characters are not in [0-9.] and thus satisfy the lookarounds. Do you know how lookarounds work? regular-expressions.info/lookaround.html –  Amber Jun 30 '12 at 19:42
1  
RegexPal does not use C# regex; it uses JavaScript regex. The two are not the same. Specifically, JavaScript regex doesn't support negative lookbehind. –  Amber Jun 30 '12 at 19:46

If I understand you right, you want to match those numbers with a point inside, too, but dont want to have these in the resulting collection.

I would approach this via 2 steps, first select all numbers, also those with a dot:

(\d+(?:\.\d+)*)

then filter out everything that is not purely numbers, and use your first regex and apply it to each item of the resulting collection from the first step:

(\d+)
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I agree with this approach; no point trying to come up with an overly complicated regular expression... However I would use [\d.]+ as the initial selector. –  user166390 Jun 30 '12 at 19:34
    
@pst: the question is if we want to treat "123." as wanted or not. Your selector would match it, and throw it away in the second step. My selector would match "123" and finally keep it. The op should decide here what fits the problem best... –  Philip Daubmeier Jun 30 '12 at 19:36

As I posted in my comment:

(?:^| )(\d+)(?:$| )

It will match all "words" that are entirely composed of digits(a word being a string of non-space characters surrounded by space characters and or the beginning/end of the string.)

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try this

(?<!\S)\d+(?!\S)

this will only match integers

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Try this

(?<![0-9.])\d+(?![0-9.])

It usees the pattern

(?<!prefix)position(?!suffix)

where (?<!prefix)position means: Match position not following prefix.

and position(?!suffix) means: Match position not preceeding suffix.

finally [0-9.] means: Any digit or the decimal point.

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>>>r = re.match("\d+", "23423 in 3.4")
>>>r.group(0)
'23423'
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Such a solution would only work in this specific case. I doubt OP wants a solution that only works for strings in this format. –  Joel Cornett Jun 30 '12 at 19:41
    
I dont think thats what the op wanted. That was just the first number in his example... –  Philip Daubmeier Jun 30 '12 at 19:42

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