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Im creating my website FOUND HERE

(this page is a result of clicking on the free tab at the bottom of my home page found here)

as you can see on this page there are 2 fields stored on the database. GIFFGAFF & O2. It successfully reads the promo_image, promo_title, promo_content from my mobi table on my database.

However: When you hit the GO button it is supose to link you to the site stored in promo_link in the same table for this offer.

It does not do that. But it loads the same page in a new tab (due to the _blank code).

my code for this page is:

<?php

include_once('include/connection.php');
include_once('include/article.php');

$article = new article();


if(isset($_GET['id'])) {
   $id = $_GET['id'];
$data = $article->fetch_data($id);

if ($param){
    echo '<div>' . $data["bla"] . '</div>';
}

$articles = $article->fetch_all();

?>

<html>

<head>
<title>xclo mobi</title>
<link rel="stylesheet" href="other.css" />
</head>

<body>
<?php include_once('header.php'); ?>


<div class="container">
<a href="index.php" id="logo">Category = ???</a>


    <?php foreach ($articles as $article) { 
    if ($article['promo_cat'] === $_GET['id']) { ?>


<div class="border">
<a href="single.php?id=<?php echo $article['promo_title']; ?>" style="text-decoration: none">
<img src="<?php echo $article['promo_image']; ?>" border="0" class="img" align="left"><br />


<a href="<?php echo $data['promo_link']; ?>" target="_blank"><img alt="" title="" src="GO.png" height="50" width="50" align="right" /></a>
<br /><br /><br /><br />
    <?PHP echo '<div class="title">' . $article['promo_title'] . '</div>'; ?>
<br />

<font class="content"><em><center><?php echo $article['promo_content']; ?></center></em></font>

</div><br/><br />

          </a>

 <?php } } } ?>

</div>
<?php include_once('footer.php'); ?>
</body>

</html>

however: if you click on one of the logos and be diverted to the single.php page and click the same go button on that page it works.

my code for the working single.php page is this.

<?php

include_once('include/connection.php');
include_once('include/article.php');

$article = new article;

if(isset($_GET['id'])) {
   $id = $_GET['id'];
$data = $article->fetch_data($id);

?>

<html>

<head>
<title>Xclo Mobi</title>
<link rel="stylesheet" href="other.css" />
</head>

<body>
<?php include_once('header.php'); ?>


<div class="container">
<a href="index.php" id="logo">Title Page</a><br /><br />

<div align="center">
<img src="<?php echo $data['promo_image']; ?>" class="img"><br />

<font class="title"><?php echo $data['promo_title']; ?></font>


<p>
<center><?php echo $data['promo_content']; ?></center>


<a href="<?php echo $data['promo_link']; ?>" target="_blank"><img alt="" title="" src="GO.png" height="50" width="50" align="right" /></a>

<br /><br />
<b><u>More From This Brand</b></u>

<br /><br />


<a href="index.php">&larr; Home</a>

</div>
<?php include_once('footer.php'); ?>
</body>

</html>



<?php
} else { 
 header('location: index.php');
 exit();
}

?>

Please can someone tell me why the list.php page does not work correctly? thank you.

kevstarlive

share|improve this question
    
possible duplicate of Database link not working –  Itay Gal Jul 20 '13 at 17:36
    
itay Gal. you did not mention this. snd this is a completely seperate article. –  kevstarlive Jul 20 '13 at 18:10

2 Answers 2

up vote 2 down vote accepted

In the non-working example, this value contains no data:

$data['promo_link']

So the href attribute in the link tag has no URL, and the browser defaults to the current page. How you're fetching that data is slightly different between the two pages. In both cases you use an id value passed from the query string:

$id = $_GET['id'];
$data = $article->fetch_data($id);

However, the two pages in question have different values on the query string. The link you posted in the question is:

http://www.xclo.mobi/xclo2/list.php?id=FREE

Whereas the link from that page to the working example is:

http://www.xclo.mobi/xclo2/single.php?id=Free%20Sim%20Card

The two id values are very different. The second one is finding a record with data in the promo_link field, the first one is not.

Upon closer inspection, it looks like this may just be a typo in the non-working page. Notice how you're also fetching a list of records in that page:

$articles = $article->fetch_all();

And you're using that in the loop for the display elements on the page:

<img src="<?php echo $article['promo_image']; ?>

But when you get to the link, you use the $data object instead:

href="<?php echo $data['promo_link']; ?>"

Maybe you meant that to be this?:

href="<?php echo $article['promo_link']; ?>"

It looks like you shouldn't even need the $data object on that first page, since your intent is to loop through a list of records instead of fetching a single record. So you can probably remove the $data references entirely and not bother fetching it from the database on that page.

I also suggest changing your variable names to not conflict with each other. When you declare the iterating variable in the loop:

foreach ($articles as $article)

You're colliding with an existing object of the same name:

$article = new article();
$data = $article->fetch_data($id);

I don't know off-hand how PHP handles name collisions in variable scope, but if for no other reason than to just avoid confusion you should name them something different. Maybe something like this:

foreach ($articles as $articleRecord)
share|improve this answer
    
David. thank you so much. it simply was my mistake. on the non working examlpe every other element was fetching $article but the link was fetching data. changing it to $article did the trick. and adding "Record" to my foreach returned an error. –  kevstarlive Jul 20 '13 at 17:35
    
@kevstarlive: Did the error indicate that you also need to update the other uses of that variable name? Conversely, you could re-name the original $article variable instead of the one in the loop. In either case the principle is the same. You shouldn't re-use variable names in such close scope. –  David Jul 20 '13 at 17:48
    
yep. i have changed my class article to class storearticle in my article.php file. thank you. –  kevstarlive Jul 20 '13 at 18:09

Use $article['promo_link'] instead of $data['promo_link'] in your page.

You are using a foreach loop to display all the links.

Also, do everything that David recommands, it will make working on your code easier =)

share|improve this answer

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