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Ok so I am trying to figure out how to assign the $updateNames varible to except 4 different values therefore allowing me to re-upload one file at a time. Right now whatever file I upload just gets put into name1.

Here is the php:

    <?php

require_once('storescripts/connect.php');
mysql_select_db($database_phpimage,$phpimage);
error_reporting(E_ALL);
$uploadDir = 'upload/';
if(isset($_POST['upload']))
{


foreach ($_FILES as $file)
{

    $fileName = $file['name'];
    $tmpName = $file['tmp_name'];
    $fileSize = $file['size'];
    $fileType = $file['type'];

    if ($fileName != ""){
        $filePath = $uploadDir;
        $fileName = str_replace(" ", "_", $fileName);

        //Split the name into the base name and extension
        $pathInfo = pathinfo($fileName);
        $fileName_base = $pathInfo['fileName'];
        $fileName_ext = $pathInfo['extension'];

        //now we re-assemble the file name, sticking the output of uniqid into it
        //and keep doing this in a loop until we generate a name that 
        //does not already exist (most likely we will get that first try)
        do {
           $fileName = $fileName_base . uniqid() . '.' . $fileName_ext;
        } while (file_exists($filePath.$fileName));

        $file_names [] = $fileName;

        $result = move_uploaded_file($tmpName, $filePath.$fileName);
    }


if(!get_magic_quotes_gpc())
{
$fileName = addslashes($fileName);
$filePath = addslashes($filePath);
}
$fileinsert[] = $filePath;
}
}

$mid   = mysql_real_escape_string(trim($_POST['mid']));
$cat   = mysql_real_escape_string(trim($_POST['cat']));
$item  = mysql_real_escape_string(trim($_POST['item']));
$price = mysql_real_escape_string(trim($_POST['price']));
$about = mysql_real_escape_string(trim($_POST['about']));

for($i = 0; $i < 4; $i++)
{
    $values[$i] = isset($file_names[$i]) ? mysql_real_escape_string($file_names[$i]) : '';

    if($values[$i] != '')
    {
        $updateVals[] = "name".($i+1)." = '{$values[$i]}'";
    }

}
$updateNames = '';
if(count($updateVals))
{
    $updateNames = ", " . implode(', ', $updateVals);
}

$update = "INSERT INTO image
               (mid, cid, item, price, about, name1, name2, name3, name4)
           VALUES
               ('$mid', '$cat', '$item', '$price', '$about', '$values[0]', '$values[1]', '$values[2]', '$values[3]')
           ON DUPLICATE KEY UPDATE
                cid = '$cat', item = '$item', price = '$price', about = '$about' $updateNames";
$result = mysql_query($update) or die (mysql_error());
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3 Answers 3

Your $fields array remains empty, while you populate the $values array. References therefore return an empty string, resulting in an incomplete assignment expression.

share|improve this answer
    
how would you suggest i assign a proper value to my $fields array? –  userX Mar 17 '12 at 21:01
    
Within each iteration of the loop, use something like $fields[$i]="name".($i+1); –  Kaustubh Karkare Mar 17 '12 at 21:05
    
where exactly would that be added? –  userX Mar 17 '12 at 21:14
    
before you reference it. –  Kaustubh Karkare Mar 17 '12 at 21:16
    
i put it inside the $fields array like this $fields = array("name".($i+1)); now the $i is undifined –  userX Mar 17 '12 at 21:22

Pretty basic error there.

INSERT INTO image (mid, cid, item, price, about, name1, name2, name3, name4) VALUES ('167', 'hats', 'zzz', 'zz', 'zz', '4f64105aad275.jpg', '', '', '') ON DUPLICATE KEY UPDATE cid = 'hats', item = 'zzz', price = 'zz', about = 'zz' , = '4f64105aad275.jpg';

At the very end of above statement, you've , = '4f64105aad275.jpg'. Please set it to: , name1 = '4f64105aad275.jpg';

share|improve this answer
    
what about name 234? –  userX Mar 17 '12 at 20:24
    
You're updating your database, so you should know about which field to store what value. I just mentioned the error in SQL statement. Also, in your insert clause VALUES ('167', 'hats', 'zzz', 'zz', 'zz', '4f64105aad275.jpg', '', '', '') you've kept name 234 empty yourself. –  hjpotter92 Mar 17 '12 at 20:29

In your code, you don't assign any value to $fields[] array in the for loop.

You don't need an array to do what you want.

That should work:

$updateVals[$i] = "name".($i+1)." = '{$values[$i]}'";

You need to use i+1 as the name variables starts with 1.

share|improve this answer
    
what value shall i assign? –  userX Mar 17 '12 at 20:25
    
Edited the answer with correct code. –  Hakan Deryal Mar 17 '12 at 20:34
    
now it just keeps replacing the first image with anything i upload –  userX Mar 17 '12 at 20:55
    
Edited the answer again. I'm not sure if it will work, don't have time to check the whole code, sorry. –  Hakan Deryal Mar 17 '12 at 21:14

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