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Am I doing this correct?

preg_match("/%$/",$line,$matches)

but it wont work! any help please

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5  
When you say "doesn't work", what do you mean? Is an error thrown? Does it just not match what you want it to? What? –  girasquid Aug 3 '12 at 16:53
    
no exception thrown nothing matches! –  pahnin Aug 3 '12 at 16:57
    
Your pattern works as is for me: codepad.viper-7.com/wpzQ59 returns 1. –  Second Rikudo Aug 3 '12 at 16:57
2  
we can't tell you if you're doing something wrong or right until you tell us what you're trying to accomplish. please write better questions –  Kristian Aug 3 '12 at 17:01
    
Maybe there is nothing to match? Is the last character in your input really a percent sign? –  knittl Aug 3 '12 at 17:03

4 Answers 4

up vote 1 down vote accepted

Your solution should be right.

http://rubular.com/r/ovrRr2N7Ze

You could also not use regular expressions since this is such a simple case:

$string = trim($string);
$matches = $string[strlen($string)-1] == '%';
if($matches) {
  //do something
}
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You needn't regexp

if($str[strlen($str)-1] == '%')
     //do stuff
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Do you want to match words that end with a percent sign? $ matches the end of the input (or line), not the end of a single word. If you want to match all words ending with a percent sign, use the following regex:

preg_match_all('/\b\w+%\b', $input, $matches);

$matches will then contain all matched words.

Taking the regex apart:

  • \w matches any word character (letters, digits, and underscore)
  • + matches at least one occurrence ("one or more")
  • \b matches word boundaries
  • % is just a percent sign
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Try tossing it into an if statement. By default, preg_match returns an integer which evaluates to either true or false.

You are not testing the result.

if(preg_match('/%$/', $line)){
    echo "Line ends with %\n";
}
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