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 the following query:

 SELECT patient_id FROM patient_visit where visit_type in ('A', 'B', 'C') 
 group by patient_id having count(*) >= 2

To get a list of all patients that had at least two visits of type 'A', 'B', or 'C'.

The patient_visit table also has a visit_date column which stores the date of the visit. My question: is it possible to modify the above query WITHOUT removing the group by statement to query "all patients with at least two visits AND where any of those two visit had a gap of 60 number of days"?

Thanks!

P.S.: i'm using Oracle, if there's a built-in function, I can use that too.

share|improve this question
    
Presumably you mean "any of those two sequential visits" not just "any of those two visit" (i.e. you are not looking for an answer that uses MAX and MIN) –  Martin Smith Mar 15 '11 at 17:27
1  
Why the restriction on keeping the group by? –  Shannon Severance Mar 15 '11 at 17:42
    
@Martin preferably any two dates –  wsb3383 Mar 15 '11 at 18:09
    
@Shannon I have this restriction because this statement is code generated through an XML to SQL compiler. Keeping the Group by statement would make it a simple change to the code generator. –  wsb3383 Mar 15 '11 at 18:10

3 Answers 3

up vote 3 down vote accepted

Any two dates, so the first and last visits would qualify?

SELECT patient_id
FROM patient_visit
where visit_type in ('A', 'B', 'C') 
group by patient_id
having count(*) >= 2 AND MAX(visit_date) - MIN(visit_date) >= 60

If you meant consecutive, then

SELECT patient_id
FROM patient_visit
where visit_type in ('A', 'B', 'C') 
  AND EXISTS (
    select *
    from patient_visit v
    where v.visit_type in ('A', 'B', 'C')
      and v.patient_id = patient_visit.patient_id
      and v.visit_date >= patient_visit.visit_date + 60)
  AND NOT EXISTS (
    select *
    from patient_visit v2
    where v2.visit_type in ('A', 'B', 'C')
      and v2.patient_id = patient_visit.patient_id
      and v2.visit_date > patient_visit.visit_date
      and v2.visit_date < patient_visit.visit_date + 60)
group by patient_id

This is an expensive query, something of the order O(N3). The Oracle LAG version could be faster.

share|improve this answer
    
+1 for first query, based on clarification of intent by OP. –  Shannon Severance Mar 15 '11 at 18:48
SQL> create table patient_visit (patient_id number(38) not null
  2      , visit_type varchar2(1) not null
  3      , visit_date date not null);

Table created.

SQL> insert into patient_visit
  2  select 1, 'A', date '2010-01-01' from dual
  3  union all select 1, 'D', date '2010-01-02' from dual
  4      -- ignore, by type
  5  union all select 1, 'C', date '2010-01-01' + 60 from dual
  6      -- 1 is included
  7  union all select 1, 'B', date '2011-01-01' from dual
  8      -- don't include 1 more than once
  9  union all select 2, 'A', date '2010-01-01' from dual
 10  union all select 2, 'B', date '2010-01-02' from dual
 11      -- breaks up 60 day gap.
 12  union all select 2, 'C', date '2010-01-01' + 60 from dual;

7 rows created.

SQL> commit;

Commit complete.

SQL> select patient_id
  2  from (select patient_id
  3          , visit_date
  4          , lag(visit_date) over (partition by patient_id
  5              order by visit_date) prior_visit_date
  6      from patient_visit
  7      where visit_type in ('A', 'B', 'C'))
  8  where visit_date - prior_visit_date >= 60
  9  group by patient_id;

PATIENT_ID
----------
         1

SQL> spool off
share|improve this answer

I dont have oracle to test but I think this will work

select patient_id from 
   (SELECT patient_id, dateField FROM patient_visit where visit_type in ('A','B', 'C') 
   group by patient_id having count(*) >= 2) as temp 
where temp.dateField > '2011-01-01'
share|improve this answer
    
for one, you can't select on dateField if it is not returned through your subquery. –  Lieven Keersmaekers Mar 15 '11 at 17:38

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.