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I have a PHP server script that SELECTs some data from a MySQL database.

As soon as I have the result from mysql_query and mysql_fetch_assoc stored in my own local variables, I want to delete the row I just selected.

The problem with this approach is that it seems that PHP has done pass-by-reference to my local variables instead of pass-by-value, and my local variables become undefined after the delete command.

Is there anyway to get around this? Here is my code:

    $query="SELECT id, peerID, name FROM names WHERE peer = $userID AND docID = '$docID' AND seqNo = $nid";
    $result = mysql_query($query);

    if (!$result)
        self::logError("FAIL:1 getUsersNamesUpdate() query: ".$query."\n");     

    if (mysql_num_rows($result) == 0)
        return array();

    $row = mysql_fetch_assoc($result);
    $result = array();
    $result["id"] = $row["id"];
    $result["peerID"] = $row["peerID"];
    $result["name"] = $row["name"];

    $query="DELETE FROM names WHERE id = $result[id];";
    $result = mysql_query($query);

    if (!$result)
        self::logError("FAIL:2 getUsersNamesUpdate() query: ".$query."\n");         

    return $result;
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2 Answers 2

up vote 7 down vote accepted

You are overwriting your $result variable with your second statement:

$query="DELETE FROM names WHERE id = $result[id];";
$result = mysql_query($query); // result does not contain the array anymore

Change the name to something else. It has nothing to do with call-by-reference or such.


Actually, your first assignment of the values is unnecessary as $row is already an array:

$row = mysql_fetch_assoc($result);
$result = array();
$result["id"] = $row["id"];
$result["peerID"] = $row["peerID"];
$result["name"] = $row["name"];

You could just do:

$row = mysql_fetch_assoc($result);
// at the end
return $row;

Then you don't even have to change your variable name for the second statement. But consider to use meaningful variable names.

share|improve this answer
    
I went from what is this guy talking about to OMG I'm an idiot in less than a second. Thank You! –  Martin Konecny Apr 24 '10 at 22:01

First of all, why not just use only one query to delete the row that interests you ?

Something like this should do the trick, I suppose :

delete 
from names
where peer = $userID 
  AND docID = '$docID' 
  AND seqNo = $nid

Of course, don't forget to escape/convert the values that should be ;-)

This way, no need for a select query, followed by a delete one.


Second : to make your code more easier to read / understand / maintain, you should probably not re-use the same variable for several different purposes.

Here, your $result variable is used for more than one thing, and it makes things harder to understand :

  • resource returned by the first mysql_query
  • then, array containing data from the first row
  • then, resource returned by the second mysql_query

It's a bit confusing, and will, one day or another, lead to errors...
Actually, it already has ;-) : the third assignment is overriding the data you're getting with the second ones, and boom, you've lost the information that corresponds to the row you've just deleted ;-)

share|improve this answer
    
Thanks, Felix mentioned the problem first. I'm just wondering what you mean about "using only one query to delete the row"? I am using only one query? –  Martin Konecny Apr 24 '10 at 22:03
    
You are using a select, and a delete : 2 queries. ;;; instead, why not remove the select query, and use only 1 query : the delete one ? ;;; you'd probably just have to use in the delete query the where clause that was used in the initial select query. –  Pascal MARTIN Apr 24 '10 at 22:07
1  
Oh now I understand what you are saying. I actually need the data that I am about to delete. It will be returned by the server to a client before being deleted forever :) –  Martin Konecny Apr 24 '10 at 22:11
    
Oh ; ok then ^^ –  Pascal MARTIN Apr 24 '10 at 22:16

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