13

I have image that is being generated in runtime on my website and I display it in html using

<img src="data:image/jpeg;base64,<!-- base64 data -->" />

Now, I want for Facebook to fetch this image, but if I do the same for og:image meta tag, facebook debugger gives me an error. Any solution?

<meta property='og:image' content='data:image/jpeg;base64,<!-- base64 data -->'/>

Of course, I would like to avoid permanent saving of files since they are always different and it would get too crowded very quickly

3 Answers 3

14

Paste it to a PHP file that echos it out:

    <meta property='og:image' content='decoder.php?data=<!-- base64 data -->'/>

decoder.php:

    <?php
        echo base64_decode($_GET['data']);
    ?>

EDIT Make sure you check source for security reasons.

5
  • this seems like good solution. Just one question. Won't the url for decoder.php be too long? Commented Aug 27, 2013 at 8:38
  • shouldn't be problem in new browsers (and for fb!)
    – exim
    Commented Aug 27, 2013 at 10:17
  • 2
    @exim I have the following error: 414 (Request-URI Too Large)
    – neoDev
    Commented May 31, 2015 at 2:43
  • @neoDev Yep, I'm getting 414 too: stackoverflow.com/questions/2891574/… (hint: use smaller images or change server configuration) Commented Oct 6, 2015 at 16:17
  • @AugustinRiedinger just change the endpoint to a nodeJS endpoint. The language isn't important, it is just doing a get request. This is highly inefficient, but an interesting solution. Commented Oct 2, 2018 at 17:38
4

Open Graph needs an URL.

You could try saving your base64 as a temp image.

2
  • How, could I do this? I have tried this $temp = tmpfile(); fwrite($temp, "data:image/jpeg;base64,".$data); But then i have resource. Commented Aug 27, 2013 at 8:29
  • temp files will not be always available. They may be deleted in any time.
    – Rami Assi
    Commented Dec 31, 2021 at 20:27
0

If the images is saved in a db as a blob you can get the image using the following:

image_generator.php:

$imageID = $_GET['id'];

$image = // Fetch the image from database using an id;

// Set the appropriate content type for the image (e.g., JPEG)
header('Content-Type: image/jpeg');
    
// Output the image data directly
echo $image;

og tag creation:

$imageID = // id referred to the image
$imageUrl = "https://yoururl/image_generator.php?id=$imageID";
echo "<meta property='og:image' content='$imageUrl' />

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.