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<?php        
    /* settings */  
    $image_dir = 'gallery/';  
    $per_column = 3;  
    $count=0;
      if ($handle = opendir($image_dir)) {  
        while (false !== ($file = readdir($handle)))  
        {  
            if ($file != '.' && $file != '..')  
            {  
                if(strstr($file,'-thumb'))  
                {  
                    $files[] = $file;  
                }  
            }  
        }  
        closedir($handle);  
    }  
    if(count($files))  
    {  
        foreach($files as $file)  
        {   
            $count++;  
            echo '<a class="thumbnail" rel="one-big-group" href="',$image_dir,str_replace('-thumb','',$file),'"><img src="',$image_dir,$file,'" width="100" height="100" /></a>';  
            if($count % $per_column == 0) { echo '<div class="clear"></div>'; }  
        }  
    }  
    else  
    {  
        echo '<p>There are no images in this gallery.</p>';  
    }  

?>  

How can I add captions to each of the images? Thank you very much for the answer!

share|improve this question
    
What kind of captions? Like where do you get the caption for each picture from? –  Vap0r Jul 12 '11 at 14:42
    
That's what I want to know how to do. Writing a caption for each file, and showing it using php in the current script. Is that possible to do with arrays? –  Grozav Alex Ioan Jul 12 '11 at 15:03

2 Answers 2

up vote 0 down vote accepted

Your code is traversing the files within the specified directory looking for files containing ...-thumb... in the filename, appending them to an array, and then looping over the array to generate HTML for displaying the thumbnail image gallery.

Adding additional information to something like this, given the very limited code you've provided, can be done in any number of ways

  1. You could implement a database with a column for each filename and a related column containing captions/descriptions. This might be more trouble than it's worth depending on what you're trying to achieve.
  2. You could use a flat file which you could parse line by line (instead of traversing the
    folder for ...-thumb... images)
    , containing some format like

    file1-thumb.png|some caption here
    file2-thumb.png|some caption here
    file3-thumb.png|some caption here
    ...
    
  3. You could includ a small caption in the filename itself, and parse/format the caption from the filenames. This would probably be the quickest route, but most limiting in terms of flexibility in the length/characters allowed for the captions.

    - file1-thumb--some_caption_here.png
    - file2-thumb--some_caption_here.png
    - file3-thumb--some_caption_here.png
    

To actually add the caption to the generated HTML, you can use a title attribute as @rockerest suggested, however I'd personally add such a caption to to the image itself, as that is what the caption is describing (not the link)

<img src="..." title="..." ... />

UPDATE

To answer your comment (this provides better formatting for code), Let's say we have a file with name file1-thumb--some_description_here.jpg, you can parse and format the caption with preg_replace

$filename = 'file1-thumb--some_description_here.jpg';
$caption = preg_replace(array('/^.+-thumb--/', '/\.(jpg|jpeg|gif|png|bmp)$/', '/_/'), array('','',' '), $filename);

$caption is now some description here

share|improve this answer
    
Great tips mate, how can I write the caption in the title? Or how can I remove the .jpeg text if I use str_replace('-thumb','',$file)? –  Grozav Alex Ioan Jul 12 '11 at 14:59
    
I will add this to my answer. –  deefour Jul 12 '11 at 15:11

The html title offers a "caption" when the mouse is hovered over the image.

foreach($files as $file)  
        {   
            $count++;  
            echo '<a title="',$caption,'" class="thumbnail" rel="one-big-group" href="',$image_dir,str_replace('-thumb','',$file),'"><img src="',$image_dir,$file,'" width="100" height="100" /></a>';  
            if($count % $per_column == 0) { echo '<div class="clear"></div>'; }  
        }
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