Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I am trying to return records that occur on the same day, but can't figure out how to do this. Using the script below, I can see there are two perf_no's with the same date, I just don't know how to return only those two items.

select perf_no, perf_name, perf_dt
from LVS_TKT_HIST 
where customer_no=1046359
order by perf_dt desc

11038   2014-05-15 20:00:00.000 Patriotic Pops #1
13950   2014-05-15 20:00:00.000 Wine Tier 3
10927   2014-04-25 20:00:00.000 Pops #4 Fri
10833   2014-04-04 20:00:00.000 Evita #4
11269   2014-03-02 19:00:00.000 Lewis & Pizzarelli
share|improve this question
1  
Is this on SQL Server? – Giannis Paraskevopoulos Sep 11 '13 at 20:45
    
Is 2014-05-15 the only day you want or all that have another record on th same day? – Tim Schmelter Sep 11 '13 at 20:45
    
Will you give a Date as an input? Or you want to see which results have the same date more than once? – Giannis Paraskevopoulos Sep 11 '13 at 20:47

If you're using SQL Server, this can be done using a Common Table Expression (CTE) and the COUNT function with the OVER clause to partition the rowset by the perf_dt column before the COUNT function is applied.

;WITH DATA AS
(
  SELECT perf_no, perf_name, perf_dt, COUNT(*) over (partition BY perf_dt) AS [count]
  FROM LVS_TKT_HIST
  WHERE customer_no=1046359
  GROUP BY perf_no, perf_name, perf_dt
)
SELECT * FROM DATA WHERE [count] > 1 

Results:

PERF_NO   PERF_NAME          PERF_DT                     COUNT
-------   -----------------  --------------------------  -----
11038     Patriotic Pops #1  May, 15 2014 20:00:00+0000  2
13950     Wine Tier 3         May, 15 2014 20:00:00+0000  2

I setup this example on SQLFiddle.

share|improve this answer

You could mean many things but I'm going with "Return all records that have other records on the same date in SQL Server"

Like this:

  select perf_no, perf_name, perf_dt
   from LVS_TKT_HIST 
   where customer_no=1046359
     AND CAST(perf_dt AS DATE) in 
       (SELECT CAST(perf_dt AS DATE)
        FROM LVS_TKT_HIST 
        WHERE customer_no=1046359
        GROUP BY CAST(perf_dt AS DATE)
        HAVING COUNT(*) > 1
       )
   order by perf_dt desc
share|improve this answer
    
I just want to return any instance in which there would be two perf_no's occuring on the same date. So in the example I initially gave, I only want returned:<br>11038 2014-05-15 20:00:00.000 Patriotic Pops #1<br> 13950 2014-05-15 20:00:00.000 Wine Tier 3 – user2770323 Sep 11 '13 at 21:01
    
you could replace having count()>1 by having count()=2 – boisvert Sep 11 '13 at 21:04
    
@user2770323 - Didn't my code do that? – Hogan Sep 11 '13 at 22:56

SQL Fiddle

MS SQL Server 2008 Schema Setup:

CREATE TABLE LVS_TKT_HIST
    ([customer_no] int, [perf_no] int, [perf_dt] datetime, [perf_name] varchar(18))
;

INSERT INTO LVS_TKT_HIST
    ([customer_no], [perf_no], [perf_dt], [perf_name])
VALUES
    (1046359, 11038, '2014-05-15 20:00:00', 'Patriotic Pops #1'),
    (1046359, 13950, '2014-05-15 20:00:00', 'Wine Tier 3'),
    (1046359, 10927, '2014-04-25 20:00:00', 'Pops #4 Fri'),
    (1046359, 10833, '2014-04-04 20:00:00', 'Evita #4'),
    (1046359, 11269, '2014-03-02 19:00:00', 'Lewis & Pizzarelli')
;

Query 1:

SELECT lth.perf_no, lth.perf_name, lth.perf_dt
FROM LVS_TKT_HIST lth
INNER JOIN (
    SELECT customer_no, CAST(perf_dt AS DATE) AS perf_dt
    FROM LVS_TKT_HIST
    GROUP BY customer_no, CAST(perf_dt AS DATE)
    HAVING count(*) > 1
) dt ON dt.customer_no = lth.customer_no AND
        CAST(lth.perf_dt AS DATE) = dt.perf_dt
WHERE lth.customer_no=1046359

Results:

| PERF_NO |         PERF_NAME |                    PERF_DT |
|---------|-------------------|----------------------------|
|   11038 | Patriotic Pops #1 | May, 15 2014 20:00:00+0000 |
|   13950 |       Wine Tier 3 | May, 15 2014 20:00:00+0000 |
share|improve this answer
    
Works beautifully, thank you. – user2770323 Sep 17 '13 at 17:54
    
If this help you, you can select it as a correct answer. Thanks! – Fabien TheSolution Sep 17 '13 at 18:28

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.