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I have a twitter feed and I can find the instagram url in a tweet.

{
    indices: [
        90,
        110
    ],
    url: "http://t.co/kF9EXifn",
    expanded_url: "http://instagr.am/p/QC8hWKL_4K/",
    display_url: "instagr.am/p/QC8hWKL_4K/"
}

What I need is to take the expanded url from that object "http://instagr.am/p/QC8hWKL_4K/" and get the link to just the image itself, not the image on the Instagram site. Anyone know how to do that? Can I even derive the that link from the url?

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1  
You could probably get it by using the Instagram API: instagram.com/developer –  aurbano Oct 1 '12 at 22:33
    
Checkout this part of the API, instagram.com/developer/endpoints/media Expand the sample response and look for the image property –  sissonb Oct 1 '12 at 22:39
    
Using the Instagram api would require another (unspecified) amount of service calls. I'm hoping to derive the url to the image from the url I'm provided. –  earl3s Oct 1 '12 at 22:40
    
Also I only need the image itself, no meta data. –  earl3s Oct 1 '12 at 22:41

1 Answer 1

up vote 18 down vote accepted

You can get just the image by appending /media/ to the URL. Using your example: http://instagr.am/p/QC8hWKL_4K/media/.

You can even specify a size,

One of t (thumbnail), m (medium), l (large). Defaults to m.

So for a thumbnail: http://instagr.am/p/QC8hWKL_4K/media/?size=t

Documentation here.

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hatsoff - simple :) –  mireille raad Sep 20 '13 at 19:31

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