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I am trying to remove the @ sign from a block of text. The problem is that in certain cases (when at the beginning of a line, the @ sign needs to stay.

I have succeeded by using the RegEx pattern .\@, however on when the @ sign does get removed it also removes the character preceding it.

Goal: remove all @ signs UNLESS the @ sign is the first character in the line.

<?php

function cleanFile($text)
{
    $pattern = '/.\@/';
    $replacement = '%40';
    $val =  preg_replace($pattern, $replacement, $text);
    $text = $val;
    return $text;
};

$text  = ' Test: test@test.com'."\n";
$text .= '@Test: Leave the leading at sign alone'."\n";
$text .= '@Test: test@test.com'."\n";
$valResult = cleanFile($text);
echo $valResult;

?>

Output:

Test: tes%40test.com
@Test: Leave the leading at sign alone
@Test: tes%40test.com
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^[[:print:]]+\.[a-zA-Z0-9] does this work –  Swaroop Nagendra Aug 20 '13 at 15:52

3 Answers 3

up vote 2 down vote accepted

You can do this with regex using a negative lookbehind: /(?<!^)@/m (an @ sign not preceded by the start of a line (or the start of the string if you skip out the m modifier)).

Regex 101 Demo

In code:

<?php
    $string = "Test: test@test.com\n@Test: Leave the leading at sign alone\n@Test: test@test.com;";
    $string = preg_replace("/(?<!^)@/m", "%40", $string);
    var_dump($string);
?>

which outputs the following:

string(84) "Test: test%40test.com
@Test: Leave the leading at sign alone
@Test: test%40test.com;"

Codepad demo

share|improve this answer
    
Works perfectly. Thank you –  user2221845 Aug 20 '13 at 15:58
    
@Downvote - why? –  h2ooooooo Aug 20 '13 at 19:36
    
I didn't downvote. The Answer was exactly what I needed. –  user2221845 Aug 20 '13 at 21:30

There's no need for regexp in such simple case.

function clean($source) {
    $prefix = '';
    $offset = 0;
    if( $source[0] == '@' ) {
         $prefix = '@';
         $offset = 1;
    }

    return $prefix . str_replace('@', '', substr( $source, $offset ));
}

and test case

$test = array( '@foo@bar', 'foo@bar' );
foreach( $test as $src ) {
    echo $src . ' => ' . clean($src) . "\n";
}

would give:

@foo@bar => @foobar
foo@bar => foobar
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Your code will replace ALL @ even if these are just after \n. Or you need to specify that string must be converted to array (which is nonesense) –  Artem L Aug 20 '13 at 16:00
    
Just remember to run this in a loop (explode("\n", $text) if you want it to work for all lines. –  h2ooooooo Aug 20 '13 at 16:00
    
create and array from a string to use strpos? I think regexp will be a bit faster & will use less memory. –  Artem L Aug 20 '13 at 16:08
    
@arthem: nobody creates array here. You need to learn about ArrayAccess in PHP –  Marcin Orlowski Aug 20 '13 at 19:23

the syntax [^] means negative match (as in don't match), but I don't think the following would work

$pattern = '/[^]^@/';
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