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I have the following code which does not seem to be working. As far as i can tell the predefined arrays are each of the same size - i have 32 rows in my table "homepage" where "username", "image" and "website" are three fields. For testing purposes the usernames are 1 to 32. And the image and website fields are blank - at the moment (this will change).

The code i have is:

 $sorthpge = mysql_query ("SELECT * FROM homepage ORDER BY no DESC LIMIT 32");



$links = array();
$images = array();
$usern = array();



$array_Length_1 = count($usern);

    for ($i=0; $i<$array_Length_1; $i++)
    {
    while ($row_1 = mysql_fetch_assoc ($sorthpge)) {
        $images[$i] = $row_1['image'];
        $links[$i] = $row_1['website'];
        $usern[$i] = $row_1['username'];
        if($images[$i] == ""){
        $images[$i] = "uploads/default.png";
        $links[$i] = "register.php?no=";
        }
        else
        {
        if($images[$i] == "auction"){
        $images [$i] = "uploads/auction.png";
        $links[$i] = "auction.php?no=";
        }
        }
    }
    }

You can probably tell what i'm trying to do. As mentioned all the "image" rows are blank so i should be getting "$images[i] = "uploads/default.png" for all i up to 32. But nothing is showing in my html.

Just wondered if somebody could point out an error in my code. Or if my set up assumes something wrong. I'm pretty new to php. Thanks a lot in advance. P.S i will translate to mysqli when i can get these basics working.

share|improve this question
    
The limit needs two bits: an offset, rows to return. That won't be helping anything –  Chris Dec 14 '12 at 13:56
    
The offset thing sounds familiar. On echoing out $images[0]; for example i get offset "0" or something coming up in the browser - some sort of error... –  Roy Dec 14 '12 at 13:58
    
@Chris Without the offset, it will just limit the results - returning the first 32 rows (in the OP's case). The query should execute fine, assuming the table's name is homepage and it has a column named no (and if there's data in the table); –  newfurniturey Dec 14 '12 at 13:59
    
when you're checking for empty image, don't use if($images[$i] == ""), instead use if(empty($images[$i])). The returned row most likely contains null and not an empty string. –  Aleks G Dec 14 '12 at 14:00
    
To be exact i get - Undefined offset: 0 in C:\xampp\htdocs\design\homepage.php on line 38 coming up - when i echo $images[0]; –  Roy Dec 14 '12 at 14:01

5 Answers 5

up vote 1 down vote accepted

In your sample code, you have the following:

$usern = array();
$array_Length_1 = count($usern);
for ($i=0; $i<$array_Length_1; $i++) {

As $usern is empty, $array_Length_1 is 0 - your loop is never executed.

I'm not sure what your logic behind doing this was/is, so I don't know a proper way to suggest to fix it, however, if you were to remove the for loop entirely and store a separate incrementer, $i, the code should work fine.

For instance, try updating your code to the following:

$sorthpge = mysql_query ("SELECT * FROM homepage ORDER BY no DESC LIMIT 32");

$links = array();
$images = array();
$usern = array();
$i = 0;
while ($row_1 = mysql_fetch_assoc ($sorthpge)) {
    $images[$i] = $row_1['image'];
    $links[$i] = $row_1['website'];
    $usern[$i] = $row_1['username'];
    if($images[$i] == ""){
        $images[$i] = "uploads/default.png";
        $links[$i] = "register.php?no=";
    } else if($images[$i] == "auction"){
        $images [$i] = "uploads/auction.png";
        $links[$i] = "auction.php?no=";
    }
    $i++;
}
share|improve this answer
    
Brilliant. It worked. Yeah i thought the problem lied at the top. Much appreciated. I will accept your answer when i can. –  Roy Dec 14 '12 at 14:06

If this is all the code, this is the problem:

$usern = array();
$array_Length_1 = count($usern);
for ($i=0; $i<$array_Length_1; $i++)
{

The array is empty, so the length is 0 so your code will never run.

What is the purpose of that for loop anyway? It seems you can just remove it.

share|improve this answer
$array_Length_1 = count($usern);

Is you problem ! Array is empty since you just declared it

share|improve this answer

One problem is that $array_Length_1 = count($usern); Your array $usern is empty.And you for loop max value is empty. meaning that $i is incrementing to 0.
$usern = array();
$array_Length_1 = count($usern);
for ($i=0; $i<$array_Length_1; $i++)

And make sure your file is saved as a php file as you mentioned your html file is showing nothing.

share|improve this answer

Your above code was failing in a few places I think. This $array_Length_1 = count($usern); wasn't helping. The for loop was running off the count of the $array_length, which was always going to be empty because it hadn't been filled yet...

Give this a try:

<?php
    // connection strings here or db include
    $sorthpge = mysql_query ("SELECT * FROM homepage ORDER BY no DESC");

    $links = array();
    $images = array();
    $usern = array();

    $array_Length_1 = count($usern);

    $i = 0;

    while ($row_1 = mysql_fetch_assoc($sorthpge)){
        $images[$i] = $row_1['image'];
        $links[$i] = $row_1['website'];
        $usern[$i] = $row_1['username'];

        if($row_1['image'] == ""){
            $images[$i] = "uploads/default.png";
            $links[$i] = "register.php?no=";
        }
        elseif($row_1['image'] == "auction"){
            $images [$i] = "uploads/auction.png";
            $links[$i] = "auction.php?no=";
        }

        $i++;

    }

?>
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