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Hi I am developing a fabook apps application using facebook php sdk. I want to share a (image as)post on facebook. I could do that with the similar code following below when share button is clicked:

$linkkk=https://example.com/edited/image.png. $shareUrl='https://www.facebook.com/dialog/feed?app_id=***********&display=popup&caption=testing&link='.$linkkk;

This takes me to facebook share dialog user interface and I could share the post on fb. Now whent I click the shared image(post) on my fb time line the image from my website(i.e. https://example.com/edited/image.png) is displayed in a new tab. But I want to take the user to my default or some custom url (like https://example.com/output.php) when he clicks on shared image post. I have been trying for last four days but, couldn't make it out. Any help or suggestion in solving this problem is appreciated.

Thanks in advance.

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