Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Good day, i'm new here and did'nt really know what to search for. I have a question about getting certain rows out of a db. I cant put it in a while loop, beacause i would output the HTML over and over again.

Anyway i'll show the code and my question.

<?php 

        $q = "SELECT * FROM image, pakket
        WHERE pakket.pakket_id = image.pakket_id 
        AND pakket.pakket_id='$packageid'";

        $image = $row['img'];           

        if ($result = mysql_query($q)){
        <a href="<?php echo $image; ?>"  rel="fancybox-thumb" class="fancybox-thumb"><img width="370" src="<?php echo $image;; ?>" style="border: 1px solid #ccc;" ></a>
        <a href="<?php echo $image; ?>" rel="fancybox-thumb" class="fancybox-thumb"><img width="119" src="<?php echo $image; ?>" style="border: 1px solid #ccc;"></a>
        <a href="img/screens/1/EO_screen3.jpg" rel="fancybox-thumb" class="fancybox-thumb"><img width="119" src="img/screens/1/EO_screen3.jpg" style="border: 1px solid #ccc;"></a>
        <a href="img/screens/1/EO_screen2.jpg" rel="fancybox-thumb" class="fancybox-thumb"><img width="119" src="img/screens/1/EO_screen2.jpg" style="border: 1px solid #ccc;"></a>
        }
        else {
            echo "Afbeeldingen konden niet opgehaald worden.";
        }
        ?>

What i want is to display the right image inside the right piece of HTML. I'm thinking i shoud have a counter which counts the number of rows in the array, but i have no idea how i should handle this.

i apreciate any help.

share|improve this question
    
Welcome to Stack Overflow! Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use pdo or mysqli. –  hjpotter92 Apr 8 '13 at 10:14
    
1. Do not use mysql_* functions as they are deprecated, use mysqli_* or PDO instead (details in manual) 2. use echo before <a href=... 3. Tell how the image is stored, is it binary data or just file name? –  Voitcus Apr 8 '13 at 10:14
add comment

1 Answer

I agree with chandresh...your code is pretty messed up....try using it this way

$link = mysqli_connect("localhost", "my_user", "my_password", "world");
$q = "SELECT * FROM image, pakket
        WHERE pakket.pakket_id = image.pakket_id 
        AND pakket.pakket_id='$packageid'";

$result = mysqli_query($link, $q);
$rs = mysqli_fetch_array($result)
while($rs)
{

// now print the image code in this using 
//$row['image']

}

you need to put the result set of the select query in an array before you can use it....go through php docs once.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.