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I want to add the value of the latest insert from TABLE1 to a subsequent MULTIPLE insert statement into TABLE2 which includes multiple entries - however in MySQL I am just getting a 0 (zero) for each entry added into TABLE2.

I know I need to store the mysql_insert_id in a variable after the first MySQL query has been executed. So I have included a variable called $post_id right after the first mysql_query() statement as follows:

// If the submit button is pressed in the HTML form
if (isset($_POST['submit_event'])) {
    // First SQL Statement
    if (!mysql_query($sql1,$con))
      {
      die('Error: ' . mysql_error());
      }
    echo "SQL 1 SUCCESS! 1 record added<br/>";

    // A variable to store the id from the last MySQL query
    // This is the first time I have declared this variable
    $post_id = mysql_insert_id();

    // Second SQL Statement which utilises the variable
    if (!mysql_query($sql2,$con))
     {
      die('Error: ' . mysql_error());
    }
    echo "SQL 2 SUCCESS! 1 record added<br/>";
    echo "Finito!<br/>";
    mysql_close($con);
}

This SQL multiple insert statement into TABLE2 I have written is as follows:

$sql2="INSERT INTO TABLE2 (post_id, meta_key, meta_value)
    VALUES
    ($post_id,'key 1','value 1'),
    ($post_id,'key 2','value 2'),
    ($post_id,'key 3','value 3')
";

However, in spite of all of this (which looks correct) when I ACTUALLY look in MySQL, the post_id for EVERY entry in TABLE2 comes out as 0 (zero)?

Where am I going wrong?! HELP!

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2  
What's inside $sql1 query? –  vyegorov Apr 30 '12 at 14:17
    
Obviously $post_id is 0, so what do you wonder about? See php.net/mysql_insert_id . –  hakre May 1 '12 at 11:07
    
$sql1 is nothing special, TABLE1 includes an AUTO_INCREMENT field and is as follows: $sql1="INSERT INTO TABLE1 (column1, column2, column3) VALUES (1,'data1','data2')"; –  jasdeepkhalsa May 1 '12 at 11:16
    
What is the database definition of TABLE1? Please add it to your question. What does give var_dump($post_id)? What does var_dump($sql2) give? How can you build $sql2 before getting $post_id? Please add error_reporting(~0); ini_set('display_errors', 1); on top of your script. –  hakre May 1 '12 at 11:20
    
I found the answer in the end! I realised that because I placed the $sql2 string statement BEFORE the $post_id = mysql_insert_id(); then PHP could not insert it into the code. So the correct way to do it is: –  jasdeepkhalsa May 7 '12 at 20:03

3 Answers 3

This may be a stupid question but it's not clear from your code: are you inserting the $post_id value into the $sql2 string?

$sql2="INSERT INTO TABLE2 (post_id, meta_key, meta_value)
    VALUES
    (" . $post_id . ",'key 1','value 1'),
    (" . $post_id . ",'key 2','value 2'),
    (" . $post_id . ",'key 3','value 3') "; 
share|improve this answer
    
Yes correct - I am inserting the $post_id into the $sql2 string! Should I be doing it in the way you have written above or was my way an equally valid example? –  jasdeepkhalsa May 1 '12 at 10:21
$sql2="INSERT INTO TABLE2 (post_id, meta_key, meta_value)
    VALUES
    ({$post_id},'key 1','value 1'),
    ({$post_id},'key 2','value 2'),
    ({$post_id},'key 3','value 3')
";
share|improve this answer
up vote 0 down vote accepted

I found the answer in the end! I realised that because I placed the $sql2 string statement BEFORE the $post_id = mysql_insert_id(); then PHP could not insert it into the code. So the correct way to do it is:

// If the submit button is pressed in the HTML form
if (isset($_POST['submit_event'])) {
// First SQL Statement
if (!mysql_query($sql1,$con))
  {
  die('Error: ' . mysql_error());
  }
echo "SQL 1 SUCCESS! 1 record added<br/>";

// A variable to store the id from the last MySQL query
// This is the first time I have declared this variable
$post_id = mysql_insert_id();

// Place the SQL statement AFTER the mysql_insert_id() variable
$sql2="INSERT INTO TABLE2 (post_id, meta_key, meta_value)
VALUES
($post_id,'key 1','value 1'),
($post_id,'key 2','value 2'),
($post_id,'key 3','value 3')
";

// Second SQL Statement which utilises the variable
if (!mysql_query($sql2,$con))
 {
  die('Error: ' . mysql_error());
}
echo "SQL 2 SUCCESS! 1 record added<br/>";
echo "Finito!<br/>";
mysql_close($con);
}
share|improve this answer

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