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SELECT pid FROM photo WHERE me() and $otherPerson IN ( SELECT subject FROM photo_tag WHERE pid=pid ) ORDER BY created DESC LIMIT 1

I'm trying to get a photo that has both users tagged in it ($otherPerson is replaced with a user id). This query returns:

604 Your statement is not indexable. The WHERE clause must contain an indexable column. Such columns are marked with * in the tables linked from http://wiki.developers.facebook.com/index.php/FQL_Tables

Any ideas on how I can make this work?

UPDATE:

I currently have this query working but I feel as though there's a better way to go about.

SELECT pid, src_big FROM photo
 WHERE pid IN (
                 SELECT pid FROM photo_tag 
                 WHERE subject=$otherGuy
                 AND pid in (
                                SELECT pid FROM photo_tag WHERE subject=me()
                             )
               )
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3 Answers 3

up vote 3 down vote accepted

This should do the trick.

SELECT pid, src_big
FROM photo
WHERE pid IN(
    SELECT pid  
    FROM photo_tag
    WHERE subject = me()
) 
AND pid IN(
    SELECT pid  
    FROM photo_tag
    WHERE subject = <friend_user_id>
)
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thanks christophe! this is working, however it is only fetching X amount of photos ~100 or so. is there a way fetch ALL photos? setting "limit 99999" does not work. thanks! –  Rees Sep 10 '12 at 23:57

I tried the other solutions and ran into a problem - If your friend has set his privacy settings to disallow apps from accessing his photos, then the following FQL query will return an empty table:

"SELECT pid FROM photo_tag WHERE subject = <friend_user_id>"

I solved this by using the following multiquery instead:

"query1" : "SELECT subject, pid FROM photo_tag WHERE pid IN (SELECT pid FROM photo_tag WHERE subject=me())"
"query2" : "SELECT pid FROM #query1 WHERE subject= <friend_user_id>"
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Doh, I spoke to soon. The updated solution in the original question works for me as well. –  Joe Rideout May 9 '12 at 4:28

What about:

  SELECT pid
    FROM photo
   WHERE me() IN (SELECT subject
                    FROM photo_tag
                   WHERE pid=pid)
     AND $otherPerson IN (SELECT subject
                            FROM photo_tag
                           WHERE pid=pid)
ORDER BY created DESC
   LIMIT 1

Also, what pid=pid means?

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I'm trying to select photo_tags where the pid of the photo_tag is equal to the pid of the photo but I'm not sure how to do that in FQL/SQL –  Chris T Nov 25 '10 at 4:47
    
and that still causes the non-indexable error :( –  Chris T Nov 25 '10 at 4:48

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