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Idea
I have a function that checks to see if a thumbnail exists in cache folder for a particular image. If it does, it returns the path to that thumbnail. If it does not, it goes ahead and generates the thumbnail for the image, saves it in the cache folder and returns the path to it instead.

Problem
Let's say I have 10 images but only 7 of them have their thumbnails in the cache folder. Therefore, the function goes to generation of thumbnails for the rest 3 images. But while it does that, all I see is a blank, white loading page. The idea is to display the thumbnails that are already generated and then generate the ones that do not exist.

Code

$images = array(
        "http://i49.tinypic.com/4t9a9w.jpg",
        "http://i.imgur.com/p2S1n.jpg",
        "http://i49.tinypic.com/l9tow.jpg",
        "http://i45.tinypic.com/10di4q1.jpg",
        "http://i.imgur.com/PnefW.jpg",
        "http://i.imgur.com/EqakI.jpg",
        "http://i46.tinypic.com/102tl09.jpg",
        "http://i47.tinypic.com/2rnx6ic.jpg",
        "http://i50.tinypic.com/2ykc2gn.jpg",
        "http://i50.tinypic.com/2eewr3p.jpg"
    );

function get_name($source) {
    $name = explode("/", $source);
    $name = end($name);
    return $name;
}

function get_thumbnail($image) {
    $image_name = get_name($image);
    if(file_exists("cache/{$image_name}")) {
        return "cache/{$image_name}";
    } else {
        list($width, $height) = getimagesize($image);
        $thumb = imagecreatefromjpeg($image);
        if($width > $height) {
            $y = 0;
            $x = ($width - $height) / 2;
            $smallest_side = $height;
        } else {
            $x = 0;
            $y = ($height - $width) / 2;
            $smallest_side = $width;
        }

        $thumb_size = 200;
        $thumb_image = imagecreatetruecolor($thumb_size, $thumb_size);
        imagecopyresampled($thumb_image, $thumb, 0, 0, $x, $y, $thumb_size, $thumb_size, $smallest_side, $smallest_side);

        imagejpeg($thumb_image, "cache/{$image_name}");

        return "cache/{$image_name}";
    }
}

foreach($images as $image) {
    echo "<img src='" . get_thumbnail($image) . "' />";
}
share|improve this question
3  
Don't generate thumbs preemptively. Redirect requests to non-existant thumbs to a PHP script that would generate them when they are needed. –  DCoder Feb 3 '13 at 15:00
    
@DCoder: I see. If possible, could you give me an coded example? I have no idea how to do what you just said. #Beginner –  Rafay Feb 3 '13 at 15:03
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1 Answer

up vote 2 down vote accepted

To elaborate on @DCoder's comment, what you could do is;

  • If the thumb exists in the cache, return the URL just as you do now. This will make sure that thumbs that are in the cache will load quickly.

  • If the thumb does not exist in the cache, return an URL similar to /cache/generatethumb.php?http://i49.tinypic.com/4t9a9w.jpg where the script generatethumb.php generates the thumbnail, saves it in the cache and returns the thumbnail. Next time, it will be in the cache and the URL won't go through the PHP script.

share|improve this answer
    
+1 - exactly what I had in mind, with one caveat - I would prefer to generate a unique identifier for each image and pass that to generatethumb.php instead of the full URL, or use a domain whitelist. Passing the full URL can give you "interesting" results if someone requests http://yoursite.com/cache/generatethumb.php?http://yoursite.com/cache/generatet‌​humb.php?http://yoursite.com/cache/generatethumb.php... –  DCoder Feb 3 '13 at 15:16
    
Hey, thanks a lot! This is precisely what I wanted to do. Thanks to @DCoder as well. Though I have another problem: Once the thumbnail is generated and saved in the directory, it shows a [X] symbol in it's place on the webpage (that symbol referring to "image not found"). What would be the a good way to remedy this? –  Rafay Feb 3 '13 at 15:21
    
@DCoder Good point, blindly fetching the URL without any kind of control is not a good thing. At the very least, you should check that the URL requests an image type, like a jpg. –  Joachim Isaksson Feb 3 '13 at 15:21
    
@Rafay That's why the script should return the generated thumbnail as a result, the browser will expect an image returned when the script is accessed. –  Joachim Isaksson Feb 3 '13 at 15:22
    
@JoachimIsaksson: That is what the script does. I even send the header header("Content-Type: image/jpeg"). Still, no avail. –  Rafay Feb 3 '13 at 15:26
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