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I'm trying to use TimThumb to display image on my blog

<?php the_title(); ?>'><img src="<?php bloginfo('template_directory'); ?>/timthumb.php?src=<?php echo catch_that_image() ?>&w=290&h=160

the above is the code I use

The problem is that the image doesn't display because the URL come out something like this.

http://myurl.com/wp-content/themes/ThemeName/timthumb.php?src=&w=290&h=160

In which is suppose to be like this for example

http://myurl.com/wp-content/themes/ThemeName/timthumb.php?src=http://myurl.com/wp-content/uploads/i0n1c.png&w=290&h=160

As you can see above is missing the part from src= and that missing part is this code <?php echo catch_that_image() ?> I've tested this code separately and it works just fine but when I combine them together then it doesn't display it properly?

Is there something I have to add to make it works?

UPDATE:

Here is the function I use to grab the image

function catch_that_image() {
  global $post, $posts;
  $first_img = '';
  ob_start();
  ob_end_clean();
  $output = preg_match_all('/<img.+src=[\'"]([^\'"]+)[\'"].*>/i', $post->post_content, $matches);
  $first_img = $matches [1] [0];

  if(empty($first_img)){ //Defines a default image
    $first_img = "/images/default.jpg";
  }
  return $first_img;
}

and here is the code to call the URL path for the image.

<?php echo catch_that_image() ?>
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1  
have you tried var_dump($image) ? –  Hajo Apr 19 '12 at 22:22
    
@Hajo can you give me some more hint or information? I'm not really expert in php as I'm going to take PHP course in this summer. –  Ali Apr 19 '12 at 22:22
    
<?php print_r($image); ?> insert that somewhere near the problem for testing and look up if the [0] key contains the data your url is missing or if its another one or even not in there. make sure to cut it afterwards from source ;) –  Hajo Apr 19 '12 at 22:25
    
var_dump($image) and tell us what you got ... –  Baba Apr 19 '12 at 22:26
    
nothing display in the page when I insert this code <?php print_r($image); ?> –  Ali Apr 19 '12 at 22:27

1 Answer 1

up vote 3 down vote accepted

I've tested this code separately and it works just fine

That code should output the variable, so you did it in another context, where the value is properly set.

Update:

have you checked the generated source code? You have exta backticks here:

?src='<?php echo $image[0]; ?>'&w=
     _                        _
share|improve this answer
    
The thing is when I only use this <img src="<?php echo $image[0]; ?>" /> I will see the image display with the right URL just fine but that is the version without timthumb but when I tried the code above then it just missing the URL for the image part. –  Ali Apr 19 '12 at 22:29
    
see my update.. –  Karoly Horvath Apr 19 '12 at 22:43
    
I was just to show that I was using that code. I've updated my question. Sorry about that. –  Ali Apr 19 '12 at 22:45
    
now it works after I change the variable name to something different. Thanks! –  Ali Apr 19 '12 at 22:49

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