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I need a regular expression that will get digits only if theres no letters infront.

DoThis(0.5) // = 0.5 should be selected
DoThis5(43) // = 43 should be selected, but not 5

I managed to write this /[0-9.]+\b/g but it will select the '5' from DoThis5(). Which is what I dont want.

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btw, all (current) answers here will match ............ - which isn't a number last time I checked. ;) If this matters, use something like \d+(?:\.\d+)? instead of the [\d.]+ or [0-9.]+ parts. –  Peter Boughton Aug 22 '11 at 12:57
    
@Peter - It dose matter. I want the '.' only if its before a digit. I came up with this (\b[0-9]+)|([.])+(\d+) but im not good with regex. Is there a better way to write this? –  cnotethegr8 Aug 22 '11 at 13:04

5 Answers 5

up vote 2 down vote accepted

If you have the \b operator available, why don't you do \b[0-9.]+ (the plus is greedy, so will eat all the digits it finds).

Edit: With a stricter regex for decimal numbers with zero or one dot and at least one number;

\b[0-9]+(\.[0-9]+)?

This currently disallows 10. and .5. It requires a regex engine which supports parentheses for grouping, and question mark for an optional part. (Some old versions of sed and e.g. Emacs require you to backslash the parentheses and the question mark.)

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you can use +? to make regex ungreedy –  Fabio Cicerchia Aug 22 '11 at 12:30
1  
That's hardly useful, here. I am attempting to explain why you don't need a \b at the end. –  tripleee Aug 22 '11 at 12:32
    
@Fabio, why would you want to match reluctantly (ungreedy)? –  Bart Kiers Aug 22 '11 at 12:35
    
This works great, except now i need it to also say 'Only . if infront (or in between) of digit'. Whichever makes more sense. In random places the '.' is selected. But i'd like it only selected in between digits. –  cnotethegr8 Aug 22 '11 at 12:42
1  
I just added a comment to the answer which will only match . when between digits. It doesn't match .5 though, so needs updating if that's needed too. –  Peter Boughton Aug 22 '11 at 13:02

If you cn't use negative look behind, this will work:

/\([0-9.]+\)/


echo "DoThis5(43)" | egrep -o "\([0-9.]+\)"                                                                                
(43)
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This still grabs any number, even if it is adjacent to an alphabetic. –  tripleee Aug 22 '11 at 12:27
    
@tripleee, no, it matches digits surrounded by parenthesis. –  Bart Kiers Aug 22 '11 at 12:33
    
your worng tripleee ..... look at my modified answer –  ennuikiller Aug 22 '11 at 12:34
    
but this doesn't match decimal numbers –  Fabio Cicerchia Aug 22 '11 at 12:35
    
@Fabio, right I just forgot to add the . inside the brackets –  ennuikiller Aug 22 '11 at 12:36

try this:

/[^\w]([\d\.]+)/

explain:

[^\w] every character that isn't a word character (like [^a-zA-Z])

[\d\.] every digit (like [0-9]) and the dot char (escaped)

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1  
This will fail if the number is at beginning of line, although in this case, perhaps that is a non-issue. –  tripleee Aug 22 '11 at 12:27
    
@tripleee - You are correct. It is an issue. –  cnotethegr8 Aug 22 '11 at 12:43
    
This should allow a number at the beginning of input to also match: (?:^|[^\w])([\d.]+) ? (note the . not escaped inside the char class!) –  Peter Boughton Aug 22 '11 at 12:52

How about :

/\([0-9.]+\)/

this will match numbers that are enclosed between ()

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Use a negative lookbehind ig the regex engine you're using supports it:

(?<!\w)[0-9.]+\b
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you must escape the dot otherwise all char is valid –  Fabio Cicerchia Aug 22 '11 at 12:32
3  
Not correct. Inside a character class, dot only matches itself. –  tripleee Aug 22 '11 at 12:34
    
It doesn't look likes its supported for me. But that would really come in handy. Which engines do support the 'look behind'? –  cnotethegr8 Aug 22 '11 at 12:34
    
Generally, Perl-compatible regular expressions (the kind which supports (?:nongrouping) and backslash escapes like \d for digit, \w for word, etc. The backslashes were already in Perl 4, whereas the ? stuff was introduced in Perl 5. –  tripleee Aug 22 '11 at 12:37
    
Most of them support (at least) fixed width lookbehind. JavaScript doesn't. –  Peter Boughton Aug 22 '11 at 12:38

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