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Remove entire word if the word contains specific string

How I can remove an entire word that contains a word? For example, 'releas' should delete released, releases releasing etc.

/* Read in from the file here, not in the function - you only need to read the file once */
$wordlist = array('release','announce');

/* Sample data */
$words = 'adobe releases releases Acrobat X';

foreach ($wordlist as $v)
      $words = clean($v,$words);

function clean($wordlist,$value)
{
        return preg_replace("/\b$wordlist\b/i", '***',trim($value));
}  

echo 'Words: '.$words.PHP_EOL;
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marked as duplicate by Gordon, j0k, AD7six, cryptic ツ, Alex Jan 2 '13 at 12:34

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

up vote 3 down vote accepted

You can loop through your $wordlist

function clean($wordlist,$value)
{
    foreach ($wordlist as $word) {
        $value = preg_replace("/\b\w*$word\w*\b/i", '***', trim($value));
    }

    return $value;
}  

and doing it in one replace

function clean($wordlist,$value)
{
    $all_words = implode('|', $wordlist);
    return preg_replace("/\b\w*(?:$all_words)\w*\b/i", '***', trim($value));
}

Update:

Looking through other answers and comments, it seems I haven't looked properly at the question. If $wordlist is not an array, you can just use @fthiella's answer.

share|improve this answer
    
@AD7six Escaping \ doesn't change anything in this case. Putting $wordlist into the pattern, does change the meaning although. –  Olaf Dietsche Jan 2 '13 at 8:38
1  
@AD7six Agreed and thank you for the explanation, I'm still learning PHP. I fixed my answer accordingly. –  Olaf Dietsche Jan 2 '13 at 8:55
    
Just a small confusion... the second approach - doing it all in one replace- can be used alone right? No need of the looping etc. right? –  Norman Jan 2 '13 at 9:36
    
@Norman Sorry for being unclear, I fixed the answer. –  Olaf Dietsche Jan 2 '13 at 9:45
1  
@OlafDietsche in the original code $wordlist is an array, but it's also redefined inside the function clean where it's just a variable since there's a foreach already, outside the clean function. But I believe it's better to move the foreach inside, so your answer is correct. –  fthiella Jan 2 '13 at 10:17

I would use this REGEXP;

return preg_replace("/\w*$wordlist\w*/i", '***', trim($value));

Applyed to your code, it would be:

foreach ($wordlist as $v)
  $words = clean($v, $words);

function clean($word, $value) {
    return preg_replace("/\w*$word\w*/i", '***',trim($value));
}

(notice that I renamed $wordlist to $word to make things clearer, since $wordlist is also the name of the array)

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I would have used \w*$wordlist\w* as \w implies the boudary \b –  Eineki Jan 2 '13 at 9:04
1  
@AD7six $wordlist is not an array in the question, because it's redefined inside a function. There might be better solution, but code will work. –  fthiella Jan 2 '13 at 9:12
    
@Eineki you're right, thanks, \b is redundant since there's \w* already –  fthiella Jan 2 '13 at 9:17
    
@fthiella sorry - there are misleading variable names in the question –  AD7six Jan 2 '13 at 10:33
    
@AD7six no problem, it wasn't clear from the question, but I edited my answer to make it more evident, anyway I think that Olaf's approach is better in this situation! –  fthiella Jan 2 '13 at 12:06

try it this way

$_words = implode( '|', $wordlist );

return preg_replace( "/\b\w*{$_words}\w*\b/i", "***", trim( $value ) );

or better

$_words = array();
foreach ( $wordlist as $word ) {
    $_words[] = '/\b\w*' . preg_quote( $word ) . '\w*\b/i';
}

return preg_replace( $_words, '***', trim( $value ) );

the second way avoids problems with regex, if some reserved chars appear inside the words.

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