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I am trying to use php to display images based on the id of the item. This is for an ecommerce store, I am having difficulty figuring it out however. This is the php I have:

     <?php 
     $product_list = "";
     $sql = mysql_query("SELECT * FROM products ORDER BY date_added DESC");
     $productCount = mysql_num_rows($sql);
     if ($productCount > 0) {
         while($row = mysql_fetch_array($sql)){ 
             $pid = $row['id'];
             $product_name = $row["product_name"];
             $price = $row["price"];
             $date_added = strftime("%b %d, %Y", strtotime($row["date_added"]));
             $product_list .= "HERE IS WHERE THE IMAGE  &nbsp; <strong>$product_name</strong> - $$price - <em>Added $date_added</em> &nbsp; &nbsp; &nbsp; <a href='inventory_edit.php?pid=$id'>edit</a> &bull; <a href='inventory_list.php?deleteid=$id'>delete</a><br />";
         }
     } else {
         $product_list = "You have no products listed in your store yet";
     }
?>

In theory, I was trying to add, where the text HERE IS WHERE THE IMAGE is to use:

    <img src='../inventory_images/$pid.jpg' />

However this and other variations that I tried did not work. How the image is uploaded is that the variable "$pid" is the id of the product, and the .jpg ending is added, here is the code to explain that:

    $pid = mysql_insert_id();
    $newname = "$pid.jpg";
    move_uploaded_file( $_FILES['fileField']['tmp_name'], "../inventory_images/$newname");

So theoretically simply by having the product id I can get the image out using $pid... that just isn't working. Ideas? Thanks in advance!

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1  
Can you confirm that the directory where the images are kept is accessible by using the ../ shortcut? Have you also tried putting that path into a browser to see if the image loads? –  EmmanuelG Jun 18 '12 at 19:27
    
Check the HTML that your code is outputting to make sure that it's what you think it's outputting - you're using a relative link for the image, for one thing, so maybe it's looking in the wrong directory? –  andrewsi Jun 18 '12 at 19:27
    
Did you try echoing the line variable $product_list to see what's contained in the <img> tag? If so, what is it? –  NaturalBornCamper Jun 18 '12 at 19:29
    
I just looked in the folder and the test image isn't there, so I guess it isn't uploading the way it should. Everything else is in the database, and correctly so. So the error must be in that last bit of php in the question itself, let me try to figure out what that error is, but help is greatly appreciated. –  Nathan Jun 18 '12 at 19:32
    
@NaturalBornCamper it is a box that has the words "Image" in it, but no actual image. –  Nathan Jun 18 '12 at 19:34

2 Answers 2

up vote 1 down vote accepted

It looks like you have an error in your output as well, could you try to replace that line:

$product_list .= "HERE IS WHERE THE IMAGE  &nbsp; <strong>$product_name</strong> - $$price - <em>Added $date_added</em> &nbsp; &nbsp; &nbsp; <a href='inventory_edit.php?pid=$id'>edit</a> &bull; <a href='inventory_list.php?deleteid=$id'>delete</a><br />";

With that line:

$product_list .= "HERE IS WHERE THE IMAGE  &nbsp; <strong>$product_name</strong> - \$$price - <em>Added $date_added</em> &nbsp; &nbsp; &nbsp; <a href='inventory_edit.php?pid=$pid'>edit</a> &bull; <a href='inventory_list.php?deleteid=$pid'>delete</a><br />";
share|improve this answer
    
Everything else is outputting correctly,can I ask what difference the "\" should make? –  Nathan Jun 18 '12 at 20:31
    
It's not only that, it's also the $id variable instead of $pid, is that normal? $$price would also be a variable variables: php.net/manual/en/language.variables.variable.php so the backslash says to ignore the first dollar sign. –  NaturalBornCamper Jun 18 '12 at 20:36
    
ah ok, thanks for clarifying :) –  Nathan Jun 18 '12 at 20:44

I see that you discovered that your image was not actually there so I thought I'd share this with you. You can check if this file exists quite easily:

if (file_exists ('../inventory_images/' . $pid . '.jpg')) {
  $product_image = '<img src="../inventory_images/' . $pid . '.jpg">';
} else {
  $product_image = '<img src="../inventory_images/image_not_found.jpg">';
}

Then simply use that $product_image variable in your $product_list where you need it. You could also modify the else statement and work in some error handling (update a field in a DB, send you an email, etc...).

Hope this helps.

share|improve this answer
    
This is great and I really appreciate it, but at the moment I'm stuck on how to actually get it to the folder, I'm not seeing what is wrong with the code that is supposed to upload the image to that file. If you could assist with that as well, I'd greatly appreciate it. –  Nathan Jun 18 '12 at 19:43
    
No problem. Are you confident that your reference to the path is correct? In other words, does the script your running have write access to '../inventory_images/' ? –  Luke Pittman Jun 18 '12 at 19:47
    
I have tried direct and relative paths, the path is correct in both formats. –  Nathan Jun 18 '12 at 19:47
1  
Put this on top of your script, it should report all errors and might give you more info: error_reporting(E_ALL); ini_set("display_errors", 1); –  NaturalBornCamper Jun 18 '12 at 20:00
1  
Seeing what's in your $_FILES variable will help, can you tell us what's displayed with var_dump($_FILES); –  NaturalBornCamper Jun 18 '12 at 20:52

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