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Editorial Team
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Asked: 2026-06-06T08:22:44+00:00

When I run this code $sql_select = INSERT INTO `database`.`table`(Columns) VALUES (Values)… ; $mysqlid

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When I run this code

$sql_select = "INSERT INTO `database`.`table`(Columns) VALUES (Values)... ";
$mysqlid = mysql_insert_id($sql_select->db);
echo ($mysqlid);

I get the error message

mysql_insert_id(): supplied argument is not a valid MySQL-Link

I have tried this variation; 

$mysqlid = mysql_insert_id();
echo ($mysqlid);

but that returns a 0 which, according to the documentation, means an auto_increment field was not found. The only thing I can think of is that I am not calling the auto_increment column in the $sql_select, but there is an auto_increment column in there; will that affect the behavior of mysql_insert_id?

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1 Answer

  1. Editorial Team

    you need to actually run the query first:

    $sql= "INSERT INTO `database`.`table`(Columns) VALUES (Values)...";
$result = mysql_query($sql);

    and then after that:

    $id = mysql_insert_id();
echo $id

    Let me know if you have still problems.

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