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I'm trying to calculate the number of organic bounces with postgresql. I want to count all the instances where a user came to site.com and them leaves after viewing the first page (e.g. row 4,5 and 6 for user ID 1. In contrast to row numbers 1-3 where user ID 1 came in from google and visited 2 more site.com pages.)

The correct answer would be user ID 1 bounced 3 times and user ID 2 didn't bounce at all. I believe row_number() and partition by might be used to solve this problem. Any help building a postgressql query would be appreciated.

EDIT- here is a link to a jfiddle with schema and data http://sqlfiddle.com/#!12/39067.

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5  
Why do you post plain ascii text as an image. This makes it really hard to construct a test case of your sample data. An example on sqlfiddle.com would be the best thing to do. –  a_horse_with_no_name May 22 '13 at 7:15
2  
Here is the fiddle with Postgres: sqlfiddle.com/#!12/39067 Btw: with Postgres there is no need to store that row_number you can generate that on the fly based on the datetime column. –  a_horse_with_no_name May 22 '13 at 8:01
1  
why not 1, 4, 5, 6 ? after 1 row number he leaves the site.... –  Justin May 22 '13 at 8:11
    
Row number 1,2,3 are a group. user ID 1 came in from google and then visited two more pages in the site(row number 2 and 3). For row number 4,5,6 user ID 1 came from google left, came back in from bing.com and then left and came to the site from ask.com. user ID 1 for row number 4,5,6 looked at one page and then left and came back in through a search engine. –  user680839 May 22 '13 at 8:15
    
It's impossible to know when the site is visited from google.com or other search site. So question, Do you have a list of search sites? when if there a list of search sites it's possible to find if webpage was visited from search site or not and give you correct results. –  Justin May 22 '13 at 8:22

2 Answers 2

up vote 1 down vote accepted

The question starts about a rate but then it changes to The correct answer would be user ID 1 bounced 3 times and user ID 2 didn't bounce at all so I'm answering the correct answer which is a step in the direction of the rate.

SQL Fiddle

select user_id, count(c = 1 or null)
from (
    select user_id, g, count(*) c
    from (
        select *,
            count(referring_url != 'site.com' or null)
            over (partition by user_id order by datetime) g
        from t
    ) s
    group by user_id, g
) s
group by user_id;
 user_id | count 
---------+-------
       1 |     3
       2 |     0

If you want to count only search engines then:

count(referring_url in (
    'google.com', 'bing.com', 'ask.com', 'yahoo.com'
    ) or null)
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THIS IS GREAT ANSWER! Thank you for your help! –  user680839 May 24 '13 at 8:19
SELECT * FROM Table1 t1
WHERE t1.referring_url <> 'site.com'
AND EXISTS (
        SELECT * FROM Table1 ex
        WHERE ex.user_id = t1.user_id
        AND ex.referring_url <> 'site.com'
        AND ex.stamp < t1.stamp
        );

BTW: I renamed datetime to stamp, since it is a reserved word.

UPDATE: if you are only interested in the rate, you could do;

SELECT t1.user_id, COUNT(*) AS reet
FROM Table1 t1
WHERE t1.referring_url <> 'site.com'
AND EXISTS (
        SELECT * FROM Table1 ex
        WHERE ex.user_id = t1.user_id
        AND ex.referring_url <> 'site.com'
        AND ex.stamp < t1.stamp
        )
GROUP BY t1.user_id
        ;

UPDATE: if you want the users with zero reeats as well you could use a join on a CTE (or on a subquery):

WITH cnt AS (
        SELECT tx.user_id , COUNT(*) AS cnt
        FROM Table1 tx
        WHERE tx.referring_url <> 'site.com'
        AND EXISTS (
                SELECT * FROM Table1 ex
                WHERE ex.user_id = tx.user_id
                AND ex.referring_url <> 'site.com'
                AND ex.stamp < tx.stamp
                )
        GROUP BY tx.user_id
        )
SELECT DISTINCT t1.user_id
        , COALESCE(cnt.cnt, 0) AS reet
FROM Table1 t1
LEFT JOIN  cnt ON cnt.user_id = t1.user_id
        ;
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