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I have this code:

$str = 'di <a href="http://www.cadoinpiedi.it/author/redazione-la/#C" style="color:#006699; text-decoration:none;">VARIABLE NAME</a>'.
                '<br>'.
                '<strong>POST TITLE</strong>'.
                '<br>'.
                '<br>';
                $content=str_replace($str, "", $content);

With it I would remove this content from RSS description like this:

NOTE: $STR IS COMPOSED BY A VARIABLE NAME and A POST TITLE that change for each item!

<img src="http://www.cadoinpiedi.it/img/fico-balo.JPG" width="280" height="94" align="left" style="margin-right:10px;" hspace="10" > 
<div style="margin-right:10px;" >
di <a href="http://www.cadoinpiedi.it/author/redazione-la/#C" style="color:#006699; text-decoration:none;">Redazione Cadoinpiedi.it</a>
<br>
<strong>La showgirl ha denunciato la coppia per diffamazione</strong>
<br>
<br>

Raffaella Fico ha querelato i coniugi Balotelli, che rischiano un processo per il reato di diffamazione aggravata, perché commessa a mezzo stampa. Sulla Gazzetta dello Sport del 27 dicembre scorso i Balotelli avevano scritto una lettera aperta alla modella. "Nostro figlio non è quell'essere irresponsabile e senza dignità che tu... <a href="http://www.cadoinpiedi.it/2013/07/11/raffaella_fico_porta_in_tribunale_i_genitori_di_balotelli.html" style="color:#006699; text-decoration:none;"> Leggi </a>

</div>

It don't work...what I am doing wrong? Thanks a lot.

share|improve this question
4  
For one thing, you appear to be concatenating your string using pluses "+" instead of periods "." –  Simon King Jul 11 '13 at 12:56
    
sorry I have edited...I have to delete all the text like $str in $content –  michele Jul 11 '13 at 12:58
    
@michele do you know already the variable name and the post title when you get the content back. –  Perry Jul 11 '13 at 13:11
    
No, I don't know it. –  michele Jul 11 '13 at 13:12

3 Answers 3

your string concatenation is incorrect. its probably causing $str to be equal to 0 when passed to the function. use . for concatenation.

$str = 'di <a href="http://www.cadoinpiedi.it/author/redazione-la/#C";'
     . 'style="color:#006699; text-decoration:none;">' . $VARNAME . '</a>' 
     . '<br>' 
     . '<strong>' . $POSTTITLE . '</strong>' 
     . '<br>' 
     . '<br>';
share|improve this answer
    
it's not good because VARIABLE NAME change. it is not a constant. –  michele Jul 11 '13 at 13:04
    
i am sorry i don't understand you. –  DevZer0 Jul 11 '13 at 13:10
    
I have edited my question...read, please. thanks for your help –  michele Jul 11 '13 at 13:12
    
I UPDATED my answer –  DevZer0 Jul 11 '13 at 13:21
    
I don't know POST TITLE and VARNAME –  michele Jul 11 '13 at 13:27
$endPos = stripos($content, "<br>");
                echo "<br><br><br>start:".$startPos."<br><br><br>end". $endPos." <br><br><br>";
                $content = substr($content, $endPos, strlen($content)-1);
                echo "<br><br><br>ecco: ".$content;
share|improve this answer
$content = substr($content,0,182).substr($content,448);

It doesn't fix your code, which is probably a problem with the + concatenation as metioned in a comment on your question, however, it should do what you are wanting.

Update to reflect OP question changes:

$startPos = stripos($content, "di &lt;");
$endPos = strripos($content, "&lt;br&gt;", $startPos) + 10;
$content = substr($content, 0, $startPos) . substr($content, $endPos);
share|improve this answer
    
it's not good because VARIABLE NAME change and it's not ever the same. –  michele Jul 11 '13 at 13:04
    
I agree, but your original attempt is just as rigid so I thought it would not matter. –  Alfie Jul 11 '13 at 13:06
    
excuse me I was badly explained –  michele Jul 11 '13 at 13:08
    
I have updated my answer with a solution which should work for you. –  Alfie Jul 11 '13 at 13:14
    
it is not working well. I have to remove from di "&lt;" to '&lt;br&gt;' –  michele Jul 11 '13 at 13:20

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