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How can I modify the following so that it keeps the character '.'?

This my regular expression:

a.replace(/[^\d]/g,'');

I am learning them, and I can see that it will keep the numbers from 0 to 9 only. Which is correct for my needs, however sometimes I need to pass a number such as 1.44 and this will just erase the '.'.

Thanks!

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4 Answers 4

up vote 3 down vote accepted

[^\d] is a character class that means anything except (^) digits (\d). You want it to remove anything except digits and periods, so just add the . to the character class:

a.replace(/[^\d.]/g,'');
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Yep, this is what I would do as well –  Atticus Aug 12 '11 at 1:32
    
That adds a dot before the number, so for example 14.4 becomes .14.4 –  luqita Aug 12 '11 at 1:34
    
@luqita It shouldn't... are you sure you copied the code exactly? Also, while periods don't have to be escaped in character classes (square brackets), remember that in general . stands for "any single character" in a regex. If you mean a literal period outside of square brackets, remember to escape it: \. –  Jared Ng Aug 12 '11 at 1:36
    
@luqita: No it does not; something else in your code must be doing that. See this jsfiddle for proof. Click the button, then enter a number and it will remove all of the non-numbers and non-periods. –  cdhowie Aug 12 '11 at 1:36
    
yup, i had a dot in my previous code! Thanks! –  luqita Aug 12 '11 at 1:41

try this:

a.replace(/[^\d.]/g,'');
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You're looking for a.replace(/[^\d\.]/g,'');

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1  
there is no need for '\' for a point in square brackets –  Innuendo Aug 12 '11 at 1:31
    
I do it out of habit. It works with or without it, after all. –  Jared Ng Aug 12 '11 at 1:33
    
It is not a good habit to get into, because it betrays a lack of understanding. –  tchrist Aug 12 '11 at 1:36
    
@tchrist I have to say that's subjective. Besides, why memorize two rules (1. period is . inside a character class 2. period is \. outside a character class) when you can just always use a \. as a literal period? I see where you're coming from, but sometimes things are done for reasons other than "it's required by syntax". –  Jared Ng Aug 12 '11 at 1:42

Just add the full-stop to the list in the square brackets (within the brackets you shouldn't need to escape it, though elsewhere in a regular expression you'd need to escape it with a backslash):

a.replace(/[^\d.]/g,'');
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Wouldn't the full-stop always mean "any character", or is that not true in square brackets? –  Evert Aug 12 '11 at 1:32
    
The special meaning of . is lost when it is used inside a character class. Just like $, +, *, etc. –  cdhowie Aug 12 '11 at 1:33
1  
@Evert - Yeah, sorry, I wasn't as clear as I could've been when I mentioned not needing to escape it. Normally full-stop means "any character" so to actually match a literal full-stop you escape it as \., but as cdhowie said you don't need to escape it within the square brackets. (You can go ahead and escape it anyway and it should work the same, but you don't need to.) –  nnnnnn Aug 12 '11 at 1:53

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