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Hi how can I store a generated id from my last query to another table in mysql using php?

Here is my code (what seems to be wrong in it?

$regInfo = "INSERT INTO details (name, age_range_ID, sports) VALUES ('{$clean_name}', {$clean_age_range}, '{$clean_sports_list}')";

    if (!mysql_query($regInfo ,$link))
      {
      die('Error: ' . mysql_error());
      }
    echo "1 record added";
    $regId = mysql_insert_id();


    $modInfo = "INSERT INTO module_info (reg_ID, programme) VALUES ('{$regId }', '{$clean_programme}')";

    if (!mysql_query($modInfo ,$link))
      {
      die('Error: ' . mysql_error());
      }
    echo "1 record added";

    mysql_close($link)
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1  
what error you are getting? there is no ";" in last line. –  baig772 Jul 2 '12 at 7:34
    
What are the {} for around the variables? –  WolvDev Jul 2 '12 at 7:34
    
Can you post the error? –  Jomoos Jul 2 '12 at 7:34
    
What is wrong with it? –  deceze Jul 2 '12 at 7:35
    
there is also a space after $regId in the query, so if id=1 query will say '1 ' –  Waygood Jul 2 '12 at 7:35

1 Answer 1

This really isn't the best way to be doing this, it's not 1999 you know... So try looking into Mysqli. If you google this topic, you'll get a bunch of tutorials on how to work with it.

And just to fix your problem for the time being, try this:

<?php

$regInfo = "INSERT INTO details (name, age_range_ID, sports) VALUES (`$clean_name`, `$clean_age_range`, `$clean_sports_list`)";

if (!mysql_query($regInfo ,$link))
{
    die('Error: ' . mysql_error());
}

echo "1 record added";
$regId = mysql_insert_id();


$modInfo = "INSERT INTO module_info (reg_ID, programme) VALUES (`$regId`, `$clean_programme`)";

if (!mysql_query($modInfo ,$link))
{
    die('Error: ' . mysql_error());
}
echo "1 record added";

mysql_close($link);
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