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for($i=0;$cast_row = mysql_fetch_array($res);$i++)
{
    $cast['id'][] = $cast_row['user_id'];
    $cast['role'][] = $cast_row['role'];
    $cast['role_name'][] = $cast_row['role_name'];
    $cast['is_approved'][] = $cast_row['is_approved'];
    $cast['movie_id'][] = $cast_row['movie_id'];
}
for($i=0;$i<count($cast['id']);$i++) //LINE 31
{
    $output .= "<tr>";
    $mname = getMovieNameById($m_id);
    $output .= "<td><a href='single.php?id=$m_id'>$mname</a></td>";

    $aname = getArtistNameById($cast['id'][$i]);
    $output .= "<td><a href=project.php?id={$cast['id'][$i]}>$aname</a></td>";
}

This code works fine in the web server but throws errors(notice) when executed on localhost

Notice: Undefined index: id in C:\wamp\www\Tinyflick\managemovie.php on line 31

What can be the problem? The rest of the code seems to work just fine

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4  
It might be that your error reporting level is different on localhost compared to web server. –  gunnx Jul 22 '12 at 10:13
    
That might be it, but have you checked that your local database has all the columns in place? –  Joe5150 Jul 22 '12 at 10:14
    
are you sure that you've set up mysql correctly on localhost? –  madfriend Jul 22 '12 at 10:15
    
Can there be a problem in future if i ignore this notice? I did not initialize each and every index of the $cast array, is that okay? –  Abhijith Jul 22 '12 at 10:16
    
@madfriend Yeah very sure my server and local host have the exactly same database –  Abhijith Jul 22 '12 at 10:17

4 Answers 4

up vote 1 down vote accepted

It kind of a silly mistake.. Its solved. Thanks to nico's comment

The error reporting level in localhost is different from the one on the server. Changing that will do the trick. The following code will show the all the errors and warnings

error_reporting(E_ALL)

Warnings are usually disabled on a production server. For more info refer the documentation of the said function

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i guess the mysql result is just empty ! :) try dumping the content of the row you get back.

btw, you could improove your code by doing something like this:

while($row = mysql_fetch_array($res)) { // iterates as long there is content
    //do something with the $row... like your second for block! ;)
}
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No, the result is getting retrieved and echoed but I'm getting warnings –  Abhijith Jul 22 '12 at 10:23

it turns out that $cast array is empty as you are not properly fetching the data from database.

if the error reporting is turned off in your server then you will not see any errors.

instead of for loop use the while loop, to iterate through the data fetched from database.

$cast = array();
while($row = mysql_fetch_array($res)) {
    $cast['id'][] = $row['user_id'];
    $cast['role'][] = $row['role'];
    $cast['role_name'][] = $row['role_name'];
    $cast['is_approved'][] = $row['is_approved'];
    $cast['movie_id'][] = $row['movie_id'];
}

and then you can run the for loop.

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1  
Data is being fetched from the database and echoed properly. The warnings are bothering me –  Abhijith Jul 22 '12 at 10:24
    
can you do var_dump($cast) and show what is being printed? –  Ibrahim Azhar Armar Jul 22 '12 at 10:25
    
array 'id' => array 0 => string '1' (length=1) 'role' => array 0 => string 'Action' (length=6) 'role_name' => array 0 => string 'MAN' (length=3) 'is_approved' => array 0 => string '0' (length=1) 'movie_id' => array 0 => string '252YZ5gY34' (length=10) –  Abhijith Jul 22 '12 at 10:30

I guess that if you want supress those notices, add the following line before the loop:

$cast = array('id'=>array(), 'role'=>array(), 'role_name'=>array(), 'is_approved'=>array(), 'movie_id'=>array() );

to initialize the variable.

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