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The vars are $ingval1 and so on.. the SQL fields are the same, obviously without the $..

This section of my script is not updating the table, why?

     <?php // post

     $basename1 = 'ingval';$basename2 = 'ingamt';
     $basename3 = 'ingdes';$basename4 = 'ingcode';

     for ($y = 1; $y < 26; $y++) { 
         $tempname1 = $basename1 . $y; $tempname2 = $basename2 . $y; 
         $tempname3 = $basename3 . $y; $tempname4 = $basename4 . $y;  
         $$tempname1 = $_POST['ingval'.$y];
         $$tempname2 = $_POST['ingamt'.$y];
         $$tempname3 = $_POST['ingdes'.$y];
         $$tempname4 = $_POST['ingcode'.$y];

    }       // sql insert

    $basename1 = 'ingval';$basename2 = 'ingamt';
    $basename3 = 'ingdes';$basename4 = 'ingcode';

    for ($y = 1; $y < 26; $y++) { 

        $tempname1 = $basename1 . $y; $tempname2 = $basename2 . $y; 
        $tempname3 = $basename3 . $y; $tempname4 = $basename4 . $y; 

        $sql = "UPDATE $cookbookdb SET  

           ingval.$y = '" . $$tempname1 . "',
           ingamt.$y = '" . $$tempname2 . "',
           ingdes.$y = '" . $$tempname3 . "',
           ingcode.$y = '" . $$tempname4 . "'

        WHERE id = '" . $barcodeinput . "'";

        sql_query($sql)or die(mysql_error());

    } ?>

I've tried this a few different ways and still no luck.

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2 Answers 2

up vote 1 down vote accepted

Why are you using variable variables in the update statement? It might be valid, but I cannot see any values from your code that would make it valid.

Should it be :

ingval.$y = '" . $tempname1 . "'

instead in your update statement?

From the code, the value of $tempname1 would be ingval1 through ingval26 but the value of $$tempname1 would be the value of the variable called $ingval1 through $ingval26 which I cannot see in the code at all.

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The data is coming from $_POST in earlier code, also with the same dynamic loop. –  M-n Sep 9 '12 at 7:07
@MarkNelson Fair enough. Are you sure you aren't simply getting a blank variable being passed then? Have you echo'ed out the SQL query just prior to running it? –  Fluffeh Sep 9 '12 at 7:12
I'll have to do that, I'm kinda avoiding it because it's an already working software and it's a mess :). I'm just simply trying to make it more dynamic for future expansion and clean it up as I go. But in a nutshell are you saying it should be working? –  M-n Sep 9 '12 at 7:18
@MarkNelson I can't see any reason that it should update a row. The SQL looks fine, I thought it was simply a syntax error, but you have that covered off well enough. The only thing that pops to mind is the old is there a missing variable in the SQL :) Just pop in a echo $sql; prior to the sql_query and see what it comes up with. –  Fluffeh Sep 9 '12 at 7:23
I added my post if it helps, in the mean time I'll do some echoing.. –  M-n Sep 9 '12 at 7:28

are you sure you have connected to the database.


if so what does the mysql_error() say?

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Yes, It has something to do with the loop. I'm kinda new to php, but I do have the basics down. I'm getting roughed up by this dynamic stuff. I also do not get an sql error –  M-n Sep 9 '12 at 7:11
just copy paste the error you are receving in your question.that way we may be of more help to you –  jimmy obonyo Sep 10 '12 at 13:54

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