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i've recently started to use php and i am trying to load the content of a website that has a list of file names with (.txt)format.Moreover, i have created a function :

<?php
//--------------------------
// The function itself
//--------------------------
function LoadSource($siteurl) {

    $arrText = file($siteurl);
    for ($i=0; $i<count($arrText); $i++) {

        $pos = strpos($text . $arrText[$i], "+CUSERR+");
                if ($pos !== false) {
                   echo "The string +CUSERR+ was found in the string";
                      $text = $text . $arrText[$i]." ==> REJECTED";
                      } else {
                               echo "The string +CUSERR+ was not found in the string";
                      $text = $text . $arrText[$i]." ==> ACCEPTED";
                      }

    }

        return $text;
    }
$source = loadSource("http://www.example.com");
echo $source; 

?>

what i am trying to do is, First to load the content of that website and then display (Rejected) Beside the txt file name that has (CUSERR) word in it or (Accepted) beside the txt file name that has (CUSACK) word.

Example :

Url : www.example.com

Content :

file1.txt Rejected 
file2.txt Accepted
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2  
What goes wrong? –  Pekka 웃 Jun 13 '11 at 18:30
3  
That code won't even execute, because I have no clue what you're doing with that for loop up there, but it's never even closed. –  BraedenP Jun 13 '11 at 18:32
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3 Answers

You have a syntax error here:

for ($i=0; $i  
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This is really a comment, not an answer to the question. Please use "add comment" to leave feedback for the author. –  Faust Aug 11 '12 at 2:58
    
Incorrect. The question is "PHP code doesn't work properly". Syntax errors cause code to work improperly, so it is a valid answer. –  George Cummins Aug 13 '12 at 14:34
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Is this the line you're after?

for ($i=0, $j=count($arrText); $i < $j; $i++) {
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Thank you Nev Stokes.you can re-check my first post.I have edited my post.Actually the function works fine (just display the content of the website ) which is the list of all files names. –  user796418 Jun 13 '11 at 18:58
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I think the problem in your code lies with the line

$pos = strpos($text . $arrText[$i], "+CUSERR+");

You don't need to test $text with $arrtext[$i] because after the first time you encounter the word (CUSERR) all the time you would get rejected as the answer even if the word (CUSERR) was not present in the $arrText[$i] because it would be present in $text. Even though in your example we are searching for "+CUSERR+" not just CUSERR, the + on both sides also need to be present to be found in the string,. So i think the below program is a good solution to your problem.

<?php
function loadsource($siteurl)
{
$arrText = file($siteurl);
    for ($i=0; $i<count($arrText); $i++) {

    $pos = strpos($arrText[$i], "+CUSERR+");
            if ($pos !== false) {
               echo "The string +CUSERR+ was found in the string\n";
                  $text = $text . $arrText[$i]." ==> REJECTED";
                  } else {
                          echo "The string +CUSERR+ was not found in the string\n";
                 $text = $text . $arrText[$i]." ==> ACCEPTED";
                }

}

    return $text;
}

$source = loadsource("http://www.example.com"); echo $source; 
?>

And another thing would be i don't know if file() function is able to parse www.example.com. I would like to recommend http://codepad.org to test your code. Its a good online compiler.

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