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I have a table that looks like this - http://d.pr/jQ1P and then another table (let's call it "actions" table) that contains a list of things that all users have done.

How can I write a query that can give me a count of how many new users referrer_id "1" has referred that also has at least 1 entry in the "actions" table? Eg. For referrer_id "1", "1723" and "1724" both have at least 1 row in the "actions" table, but not "1725. So for user "1", he has successfully referred 2 users, even though there's also "1725".

Hope that makes sense.

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2  
It would be easier to understand your question if you added schema right into it. You can get table definition by running explain actions or show create table actions. And do the same for the other table. –  Sergio Tulentsev Dec 18 '11 at 4:51
    
Here is "actions" - d.pr/BHne, and here is "referral" - d.pr/V2Ei. –  Koes Bong Dec 18 '11 at 5:05
    
Doesn't @Corbin's solution work for you? –  Sergio Tulentsev Dec 18 '11 at 5:29
    
not so much, unfortunately –  Koes Bong Dec 18 '11 at 5:33
    
what's not right? Seems ok to me. Do you have a sample data dump that I can play with? –  Sergio Tulentsev Dec 18 '11 at 5:38

2 Answers 2

up vote 2 down vote accepted

Here you go:

SELECT
  COUNT(DISTINCT r.new_user_id)  
FROM
  referral r    
  JOIN actions a ON a.fk_userid = r.new_user_id 
WHERE 
  r.referrer_id = 1;
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Using a JOIN, you know that if there is a row, then at least 1 row matched in the JOIN table. You can combine that with a GROUP BY to pull unique ids. I have a feeling this could be a in a much more efficient way, but the first thing that comes to mind is:

SELECT 
    COUNT(referrals.new_user_id) 
FROM 
    referrals
    JOIN actions ON actions.user_id = referrals.new_user_id 
WHERE 
    referrals.referrer_id = 1
GROUP BY referrals.new_user_id;

Edit: After thinking about it for a bit, assuming everything is indexed, I can't think of a more efficient solution. Some mild googling suggests that COUNT(DISTINCT referrals.new_user_id) might be faster instead of using the GROUP BY.

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