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Possible Duplicate:
“Column count doesn’t match value count at row 1”

In PHP/MySQLi I am receiving this error when attempting to execute a statement within a for loop. This is my function that has been working so far:

function delete_article($id)
{       
    $move   = "INSERT INTO deleted SELECT * FROM article WHERE id='$id'";
    $delete = "DELETE FROM article WHERE id='$id'";

    if($this->mysqli->query($move))
    {
        // Only attempt delete if move was possible.

        if($this->mysqli->query($delete))
        {
            // Nothing.
        }
    }

    if($this->mysqli->errno)
        echo $this->mysqli->error . "<br/>";
}

This function works as expected when called in the following manner:

if($_POST['delete_article_id'] && isset($_POST['delete_article_id']))
{           
    $this->db->delete_article($_POST['delete_article_id']);

    exit(header("Location: " . __MANAGER__));
}

This function stops working when used this way (this way produces the error):

function delete_manager_articles($articles) // Take multiple IDs as STRING.
{
    $make_array = explode(",", $articles);  // Convert into array of IDs.

    for($i = 0; $i < count($make_array); $i++)
    {
        if($make_array[$i] == "" || $make_array[$i] == null)
        {
            // Remove empty array elements if present.
            unset($make_array[$i]);
        }
        else
        {
            // Else remove string prefix "article_check_" leaving ID only.
            $make_array[$i] = str_replace("article_check_", "", $make_array[$i]);

            $this->delete_article($make_array[$i]);
        }
    }       
}

Why is this error occuring when the function is used this way? I can guarantee the ID that is left after the str_replace() function is an exact match of the ID(s) in the database.

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marked as duplicate by KingCrunch, Michael Berkowski, Stony, Hogan, Praveen Kumar Dec 31 '12 at 17:37

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Error is quite clear. Table deleted and table article have different number of fields or select query returns nothing. –  Leri Dec 31 '12 at 13:11
3  
$this->db->delete_article($_POST['delete_article_id']); - nice sql exploit you've got there. –  AD7six Dec 31 '12 at 13:15
    
This is the correct answer. I had altered table article with an additional column, neglecting to do the same with deleted and had forgotten about it at this point. –  George88 Dec 31 '12 at 13:16
    
@George88 Glad that solved your problem. ;) –  Leri Dec 31 '12 at 13:18
2  
@PLB you should make your comment an answer so it can be accepted. @George88 - yes, yes it is as bad as it looks. You're assuming that the value is trustable just because it's an admin user - don't trust anything e.g. $this->db->delete_article((int)$_POST['delete_article_id']); –  AD7six Dec 31 '12 at 13:33

1 Answer 1

Probably because the select returns nothing at that point, therefore insert into select will not work. Could help to debug wether the select returns anything. Find out the id on which it breaks (assuming all the parameters received are correct) and run the select manually.

EDIT
As pointed below, this answer is wrong.

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2  
Empty resultset from select does not trigger any error when trying to insert it –  dev-null-dweller Dec 31 '12 at 13:16
    
You are right, my appologies. –  Xnoise Dec 31 '12 at 13:20

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