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I am developing a runtime intelligence software program. It collects the version number of programs so you can then see the statistics for each version number. The problem I am having with this is that some computers are sending the actual version number (ie: 0.4) and others are sending an erroneous version number (ie: 0.4.0). I was wondering if it would be OK if I used something like:

$version = rtrim($version, ".0");

Would this work to get rid of this problem or what this just cause more problems later on down the road?

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The last segment of 0.4.0 is not erroneous. There is a difference between versions 0.4.0 and 0.4.1. –  PhpMyCoder Jul 14 '12 at 7:23
    
and so is version 1.0.0 the zeroes are there for a reason. –  Dexter Huinda Jul 14 '12 at 7:28

3 Answers 3

up vote 1 down vote accepted

This absolutely can cause problems. rtrim strips those characters if they appear at the end of the string in any order and possibly multiple times. So 1.10 will become 1.1 but these are not necessarily the same version.

See it online: ideone

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------------------------------------------------------ –  arkascha Jul 14 '12 at 7:23
    
More importantly 10.01 will become 101 –  Sandy Gifford Jul 14 '12 at 7:39
    
Wait, rtrim, derp. Nevermind... –  Sandy Gifford Jul 14 '12 at 7:41
    
Thanks. I am now using substr() instead of rtrim() to remove a trailing '.0' like this: if ( substr_count( $sAppVer, '.' ) > 1 ) { // Remove trailing '.0' so '1.0.0' turns into '1.0' if ( substr( $sAppVer, -2 ) == '.0' ) $sAppVer = substr( $sAppVer, 0, -2 ); } –  ub3rst4r Jul 15 '12 at 18:25

And what do you do if there is a "actual version" number, how you call it, of say, 5.0 ?

I suggest you use a regex instead, probably the preg_match() function:

$tokens=preg_match($version,'/^([0-9]+)\.([0-9]+)/',$tokens);
if (3=count($tokens))
     $actualVersion=sprintf('%s.%s',$tokens[1],$tokens[2]);
else $actualVersion=='?.?';
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Based on Mark Byers' answer, you can't use rtrim().

I recommend preg_replace():

$ver = '0.4.0';
$pattern = '/^([0-9.]+)\.0$/';
$replacement = '${1}';
echo preg_replace($pattern, $replacement, $ver);

DEMO

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