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I'm currently using the pattern: \b\d+\b, testing it with these entries:

numb3r 
2
3454 
3.214
test

I only want it to catch 2, and 3454. It works great for catching number words, except that the boundary flags (\b) include "." as consideration as a separate word. I tried excluding the period, but had troubles writing the pattern.

Basically I want to remove integer words, and just them alone.

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1  
In which context do you use regex ? grep ? vim ? perl ? other... –  Luc M Jan 28 '12 at 6:57

3 Answers 3

up vote 5 down vote accepted

You could use lookaround instead if all you want to match is whitespace:

(?<=\s|^)\d+(?=\s|$)
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To catch negative numbers you can add [-+]? to catch negative numbers too. The regex becomes: (?<=\s|^)[-+]?\d+(?=\s|$) –  Brad Jul 6 '12 at 17:30

Similar to manojlds but includes the optional negative/positive numbers:

var regex = /^[-+]?\d+$/;
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If you ask me, this is the best answer. –  River Tam Nov 28 at 19:31

All you want is the below regex:

^\d+$
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works for me well –  psulek Feb 5 '13 at 19:34
3  
Works until you need to handle integers that are negative. –  davidjb Jul 4 '13 at 2:22

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