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I have a string formed up by numbers and sometimes by letters.

Example AF-1234 or 345ww.

I have to get the numeric part and increment it by one.
how can I do that? maybe with regex?

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3 Answers 3

up vote 16 down vote accepted

You can use preg_replace_callback as:

function inc($matches) {
    return ++$matches[1];
}

$input =  preg_replace_callback( "|(\d+)|", "inc", $input);

Basically you match the numeric part of the string using the regex \d+ and replace it with the value returned by the callback function which returns the incremented value.

Ideone link

Alternatively this can be done using preg_replace with e modifier as:

 $input =  preg_replace( "|(\d+)|e", "$1+1", $input);

Ideone link

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+1 I prefer this one. –  Russell Dias Nov 30 '10 at 11:47
    
what if i have string like "XXX-342"? it will be in $matches[0] or $matches[1]? –  tampe125 Nov 30 '10 at 11:51
3  
@codaddict: Don't you think that callback is a "little" overhead there? Why don't use regular + 1? –  zerkms Nov 30 '10 at 11:52
    
@tampe125: It will be in both [0] and [1] –  zerkms Nov 30 '10 at 11:53
    
@zerkms: You are right, this can be easily done using preg_replace with e modifier. Please see my updated answer. –  codaddict Nov 30 '10 at 11:56

If the string ends with numeric characters it is this simple...

$str = 'AF-1234';
echo $str++; //AF-1235

That works the same way with '345ww' though the result may not be what you expect.

$str = '345ww';
echo $str++; //345wx

@tampe125

This example is probably the best method for your needs if incrementing string that end with numbers.

$str = 'XXX-342';
echo $str++; //XXX-343
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Here's some Python code that does what you ask. Not too great on my PHP, but I'll see if I can convert it for you.

>>> import re
>>> match = re.match(r'(\D*)(\d+)(\D*)', 'AF-1234')
>>> match.group(1) + str(int(match.group(2))+1) + match.group(3)
'AF-1235'
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Others have already answered in PHP. I'll leave this here in case someone finds it useful though. –  marcog Nov 30 '10 at 11:50

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