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I'm trying to have a form that when you select the radio button it will select the image and query into the server; now I'm not quite sure as to how this would be accomplished because when I select any other then the original it doesn't seem to work. My form Code (Well. The important part)

<form action="update_image.php" method="post">
<input type="hidden" name="page" value="Index" />
<td><center><input name="image" type="radio" value="images/cartoon/2ofus.png" /></center></td>
<td><center><input name="image" type="radio" value="img src='images/cartoon/3lb_Bruce.png" /></center></td>
<td><center><input name="image" type="radio" value="img src='images/cartoon/bearry.png" /></center></td>
<td><center><input name="image" type="radio" value="img src='images/cartoon/Bemmer.png" /></center></td>
<input type="submit" value="Update" />
   </form>

My Query is as follows:

$link     = mysqli_connect("$server", "$user", "$pass", "$webdb");
    $page = mysqli_real_escape_string($link, (string) $_POST['page']);
    $content = mysqli_real_escape_string($link, (string) $_POST['image']);
$query = "UPDATE `pages` 
              SET `image`='<$image>' 
              WHERE `name`='$page'";

    mysqli_query($link, $query);
    mysqli_close($link);

?>

It's not the best in the world, but overall I think it should work solidly, but it doesn't, so if anyone might know why it'd be great. Thanks.

The first Is the original. Sorry for not specifying.

share|improve this question
    
What do you mean by "when I select any other then the original" ? Which is the original one? –  janenz00 Oct 9 '12 at 0:55
    
Added Clarification to the post. Sorry for not specifying. –  Morgan Green Oct 9 '12 at 1:01
    
Is there a reason why the value of the others is different than the value of the first(img src='some_relative_url)? –  Daedalus Oct 9 '12 at 1:15
    
Yes. It's a form to actually change the image on the home page while logged in as an admin. I found a work around since SQL and PHP weren't getting along with me by echoing on the index page with codeecho "<img src='"; echo $row['image']; echo "'>";code It's not the best in the world, but it works. –  Morgan Green Oct 9 '12 at 1:37
    
That doesn't explain why your options, 2-4 are different than option 1 in value. By your explanation, your image tag would then render as <img src="img src='someurl" />. –  Daedalus Oct 9 '12 at 1:40

2 Answers 2

up vote 0 down vote accepted

This is what I understood from your question. You have a specific image in the home page, whose src is queried from the database and can be updated by the form given by you.

Change the form to :

 <form action="update_image.php" method="post">
      <input type="hidden" name="page" value="Index" />
  <td><center><input name="image" type="radio" value="images/cartoon/2ofus.png" /></center>   </td>
  <td><center><input name="image" type="radio" value="images/cartoon/3lb_Bruce.png" /></center></td>
  <td><center><input name="image" type="radio" value="images/cartoon/bearry.png" /></center></td>
 <td><center><input name="image" type="radio" value="images/cartoon/Bemmer.png" /></center></td>
 <input type="submit" value="Update" />

Change the query to:

  $query = "UPDATE `pages` 
          SET `image`='$image' 
          WHERE `name`='$page'";

In the index page, after querying the tables pages, use the result in the image tag like :

 print "<img src='{$row['image']}'/>";
share|improve this answer
    
Their form was already like that. They state as much in the comments. –  Daedalus Oct 9 '12 at 2:05
    
@Daedalus : Noticed that comment after posting the answer. Looks like he was printing the <img> tag wrong. Anyhow, should I remove the form part? –  janenz00 Oct 9 '12 at 2:08

One obvious mistake is the naming of your variables, you assign the value of the radio-button to $content and then in your query you are using <$image>. That should just be $content without the < and >.

Apart from that you should add error handling, for example mysqli_error($link) will give you the last error.

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