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I'm having a problem running a sql query using php.

$sql = "SELECT * FROM ".self::$table_name;
$result = mysql_query( $sql );
$r = mysql_fetch_array( $result );
print_r( $r );
die( '<br>'.$sql );

I have around 70 records in table but i'm only getting the first record. see example.

Array ( [0] => site_url [setting_name] => site_url [1] => http://domain.com [value] =>     http://domain.com ) 
SELECT * FROM siteconfig

When I run the query in phpmyadmin. it works fine.

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You need to loop through the results. –  j08691 Feb 16 '12 at 23:31
    
i'm only using print_r see the result i know that i have to use while loop to get the results. I will write that later to check for mysql_error. if query is displaying somthing then query its not wrong. question why only 1 record rather then all 70 records. –  Lalajee Feb 16 '12 at 23:32
    
The problem was that the loop i was using can't handle 2 variable in table. I start using mysql_fetch_array. which worked fine. –  Lalajee Mar 15 '12 at 15:21

2 Answers 2

up vote 1 down vote accepted

Do it like below:

  $sql = "SELECT * FROM ".self::$table_name;
    $result = mysql_query( $sql );

    while($r = mysql_fetch_array($result)){
    echo $r['col1']. " - ". $r['col2'];
    // your stuff
    }
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Thank you for your answer. This works. for some reason my function can't handle 2 variable tables –  Lalajee Mar 15 '12 at 15:22

You have to make a loop to grab all the results:

$r = array();
while($junk = mysql_fetch_array($result)) $r[] = $junk;
print_r($r);
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