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I generated a XML file in php. This file generates a xml output perfectly in my localhost and at the same time when I uploaded it to my server it fails.
Error Screen Screen Shot of Error Here is the code.

<?php  

    include_once("database/db.php");

    $sqlNews    =   "SELECT * FROM news";

    $runSqlNews =   mysql_query($sqlNews);

    while ($rowSqlNews  =   mysql_fetch_array($runSqlNews)) 
        $arrSqlNews[]   =   $rowSqlNews;

        header('Content-type: text/xml');
        header('Pragma: public');
        header('Cache-control: private');
        header('Expires: -1');
        echo "<?xml version=\"1.0\" encoding=\"utf-8\"?>";

        echo '<xml>';

    for($i=0;$i<count($arrSqlNews);$i++) 
    {
        echo "<news>";
            echo "<newsId>".$arrSqlNews[$i][id]."</newsId>";
            echo "<newsAuthor>".$arrSqlNews[$i][news_author]."</newsAuthor>";

            echo "<description>".$arrSqlNews[$i][news_description]."</description>";
            echo "<newsText> <![CDATA[".$arrSqlNews[$i][news_text]. "]]></newsText>";
            echo "<plainNewsDescription>".$arrSqlNews[$i][plain_news_description]."</plainNewsDescription>";
            echo "<plainNewsTitle>".$arrSqlNews[$i][plain_news_title]."</plainNewsTitle>";
            echo "<newsUrl> <![CDATA[". $arrSqlNews[$i][news_url]. "]]></newsUrl>";
            echo "<newsCategory> <![CDATA[". $arrSqlNews[$i][category]. "]]></newsCategory>";
            echo "<image>http://metroplots.com/images/members/".$arrSqlNews[$i][news_image]."</image>";
            echo "<createdOn>".$arrSqlNews[$i][created_on]."</createdOn>";
        echo "</news>";       
    }
        echo '</xml>';
?>

New xml File after changes

<?php
    ini_set('error_reporting', E_ALL);

    include_once("database/db.php");

    $dbConn     = new mysqli($dbHost, $dbUserName, $dbUserPasswrd, $database);;

    $sqlNews    = "SELECT id, news_author,news_description,
                          news_text, news_url, category, news_image, created_on
                     FROM news";

    $stmt   = $dbConn->prepare($sqlNews);
    $stmt->execute();

    $stmt->bind_result($id, $newsAuthor, $newsDescription, $newsText, $newsUrl, $Category, $newsImage, $createdOn);


    header('Content-type: text/xml');
    header('Pragma: public');
    header('Cache-control: private');
    header('Expires: -1');

    echo "<?xml version=\"1.0\" encoding=\"utf-8\"?>";
    echo '<xml>';
    echo "<news>";

    while($stmt->fetch())
    {
        echo "<newsId>".$id."</newsId>";
        echo "<newsAuthor>".$newsAuthor."</newsAuthor>";
        echo "<description>".$newsDescription."</description>";
        echo "<newsText> <![CDATA[".$newsText. "]]></newsText>";            
        echo "<newsUrl> <![CDATA[". $newsUrl. "]]></newsUrl>";
        echo "<newsCategory> <![CDATA[". $Category. "]]></newsCategory>";
        echo "<image>http://metroplots.com/images/members/".$newsImage."</image>";
        echo "<createdOn>".$createdOn."</createdOn>";        
    }

    echo "</news>";       
    echo '</xml>';

    $stmt->close();
    $dbConn->close();
?>

Please let me know where I went wrong. Thanks in Advance !!!

share|improve this question
    
Possibly nothing in the news table on your remote DB? –  Phil Dec 13 '12 at 5:20
    
Sorry. This table has 1000's of records on DB. –  Vignesh Gopalakrishnan Dec 13 '12 at 5:21
    
What do you see in view page source source. –  Musa Dec 13 '12 at 5:26
    
Just i tried and It is empty. –  Vignesh Gopalakrishnan Dec 13 '12 at 5:29
    
In addition to setting error reporting, you should also display errors, ie ini_set('display_errors', 'On'); –  Phil Dec 13 '12 at 11:18

3 Answers 3

Hard to say what exactly goes wrong here. For debugging, you could add a ini_set('error_reporting', E_ALL); at the beginning of your script or watch your php error log.

You got a few other problems in your script architecture

  • You should no longer use the mysql extension. Use mysqli or PDO instead.

  • The headers should be sent once only. Move them out of your loop to the top

  • why do you loop through the result twice? Remove the for loop and move its content into the while loop. Within the loop replace the variable $arrSqlNews by $rowSqlNews and remove the index accessor [$i]

Simplified example

while( $rowSqlNews = mysqli_fetch_assoc( $mysqliResult ) ) 
{
    echo $rowSqlNews['yourdbCol1'];
}
share|improve this answer
    
Thank you for your reply. Let me check it now. –  Vignesh Gopalakrishnan Dec 13 '12 at 7:20
    
+1 This is the day i learned mysqli from you. Thanks for that. I changed all as advised above. I added ini_set('error_reporting', E_ALL); and no difference on the page. The error remains the same as pasted the screen shot above... –  Vignesh Gopalakrishnan Dec 13 '12 at 9:30
    
Another thing i found is as above said, (ctrl+u) Page source is empty.. –  Vignesh Gopalakrishnan Dec 13 '12 at 9:33
    
Could you update your code in your question and add the db.php for a review? –  Michel Feldheim Dec 13 '12 at 9:54
    
FYI the headers are not sent in the while loop –  Phil Dec 13 '12 at 10:12

Have you tried disabling PHP Output Buffering?

In PHP.ini: output_buffering = Off or comment out existing setting: ;output_buffering = On.

Don't forget to restart web server after changing settings.

share|improve this answer

I suspect that your upload tool transfers the file not in binary-safe way. Try to compare file sizes of the copy on your local machine and the remote one.

share|improve this answer
    
Well, this is a text file, right? –  Michel Feldheim Dec 13 '12 at 6:29
    
NO it is not (.txt) file. It is (.php) file. –  Vignesh Gopalakrishnan Dec 13 '12 at 6:44
    
No doubt. Still, the content of your file is text and can be transferred in ASCII mode –  Michel Feldheim Dec 13 '12 at 7:03

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