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I'm bad with regex and could need help to identify the fractions of a number. (Is fraction the right word? I mean the numbers behind the . like the .5 in 2.5)

So if I input 10.0/5.5/41.1 into a decent preg_replace() (PHP) I want it to find (and replace) the .0, .4 and .1. There is always a . as limiter for fractional numbers. Is this possible with regex?

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closed as off-topic by Jack Maney, CSᵠ, Mario, karthikr, Jonas G. Drange Jul 3 '13 at 22:50

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You want to replace 10.0/5.5/41.1 to 10/5/41 or what ? –  HamZa Jul 3 '13 at 1:02
    
Sorry for not making that clear. Actually I want to use it for styling. The .0, .5 and .1 are less important and should be displayed in a smaller font to make the numbers better readable but still give the full information for those who want the exact numbers. Thats why I want to replace the .0 with say <span class="foo">.0</span> –  user2015253 Jul 3 '13 at 1:04
1  
@JackManey Ow yeaaaaaah. Let's use regex ! –  HamZa Jul 3 '13 at 1:19
1  
@HamZa - LOL. Well, why not go all the way and break out SimplePHPEasyPlus? –  Jack Maney Jul 3 '13 at 1:21
1  
@HamZa - I'm in the middle of teaching myself C++, and your link gave me evil thoughts about creating a wrapper class that overloads the arithmetic operators via regexes... –  Jack Maney Jul 3 '13 at 1:33

2 Answers 2

up vote 4 down vote accepted

You may use the following pattern: (\d+)(\.\d+) and replace with $1<span class="foo">$2</span>

PHP Code

$string = '10.0/5.5/41.1';
$output = preg_replace('#(\d+)(\.\d+)#', '$1<span class="foo">$2</span>', $string);
var_dump($output);

Output

string '10<span class="foo">.0</span>/5<span class="foo">.5</span>/41<span class="foo">.1</span>' (length=88)

Explanation

  • (\d+) : match one or more digits and put in group 1
  • (\.\d+) : match a dot and one or more digits and put in group 2
  • The replacement is quite basic, we invoke the groups by using $n

Online regex demo

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'0' -- will not match. Are any int number. –  sectus Jul 3 '13 at 1:13
    
@sectus There is always a . as limiter for fractional numbers Otherwise we could simply add a ? so it becomes (\d+)(\.\d+)? –  HamZa Jul 3 '13 at 1:15
<?php
echo preg_replace('/(\d+)(\.\d+)/', '${1}replace_here', '10.23')
?>

it will print

10replace_here

To match the . you use \. because . is a wildcard used to match anything when you are talking about regular expressions. To match one or more numbers you use \d+ (the + is at least one). So basically, the pattern is saying that I will match the left part of the . and the rignt part (including the .). You can see it inside the parenthesis. You can call what was matched using the $n where n is the position. So you will have two matches. $1 will give you the left side of the . and $2 will give the right side.

I used ${1} because maybe you want to replace the . with a number which could cause an error since $11 is a match (it match 100 times giving you $0, $1, $2, ..., $99)

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