Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a table of subscriptions for contacts. A contact can have multiple subscriptions:

CREATE TABLE contact (
    id INTEGER NOT NULL,
    name TEXT,
    PRIMARY KEY (id)
);

CREATE TABLE subscription (
    id INTEGER NOT NULL,
    contact_id INTEGER NOT NULL REFERENCES contact(id),
    start_date DATE,
    end_date DATE,
    PRIMARY KEY (id)
);

I need to get all subscriptions for a given by contact that do not have a subscription that starts on the same date as the end date of the another subscription for the same contact.

So for the given data:

INSERT INTO contact (id, name) VALUES 
(1, 'John'),
(2, 'Frank');

INSERT INTO subscription (id, contact_id, start_date, end_date) VALUES 
(1, 1, '2012-01-01', '2013-01-01'),
(2, 1, '2013-01-01', '2014-01-01'),
(3, 2, '2012-01-01', '2012-09-01'),
(4, 2, '2013-01-01', '2014-01-01');

I want to get subscriptions with ids of 2, 3, 4 but not 1, because the contact 'John' has a subscription with a start_date on the same day (2013-01-01) as the end_date for subscription with id of 1.

What is the best way to achieve this?

share|improve this question
1  
Fixed a typo, but I like how you provided a proper test case. +1 Note, however, that your text contradicts itself. A query for a given contact can never return 2, 3, 4, since 2 belongs to a separate contact. –  Erwin Brandstetter Jul 30 '13 at 4:02

2 Answers 2

up vote 1 down vote accepted

SQL Fiddle

select *
from subscription s0
where not exists (
    select 1
    from subscription s1
    where
        s0.contact_id = s1.contact_id
        and s1.start_date = s0.end_date
)
order by contact_id, id
share|improve this answer
    
Perhaps I wasn't exhaustive enough in the example data in my question, but, from what I can tell, this solution won't work if there are more than two subscriptions per contact. See this fiddle. –  Divey Jul 29 '13 at 18:29
    
@Divey I updated the fiddle with more than 2 subscriptions per contact. Post more data to test it. –  Clodoaldo Neto Jul 29 '13 at 18:33
    
Using your fiddle, the subscription with an id of 4 should not appear in the results. It has an end_date of '2014-01-01', which is the start_date for the next subscription (id 5). –  Divey Jul 29 '13 at 19:17
    
@Divey Try the new one –  Clodoaldo Neto Jul 30 '13 at 0:03
    
Thanks @Clodoaldo. That does the trick. –  Divey Jul 30 '13 at 16:08

LEFT JOIN / IS NULL should be a good choice, since there normally are no (or few) rows to join:

SELECT *
FROM   subscription s
LEFT   JOIN subscription s1 ON s1.contact_id = s.contact_id
                           AND s1.start_date = s.end_date
WHERE  s.contact_id = 1
AND    s1.id IS NULL;

->SQLfiddle

Works well with Postgres 8.4.
But @Clodoaldo's NOT EXISTS variant should be good, too, just add the WHERE clause for a given contact.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.