Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I didn't expect to find this so difficult, but I'm trying to set a user variable in MySQL to contain an array of values. I have no clue how to do this so tried doing some research and was quite suprised to find no answer. I have tried:

SET @billable_types = ['client1','client2','client3'];

The reason being I would like to use the variable in the following statement later on:

SELECT sum((time_to_sec(timediff(tlg.time_stop, tlg.time_start))/3600)) as billable_hours
    from mod_tmlog_time_log tlg, mod_tmlog_task_list mttl
    where date(tlg.time_start) >= @time_start
          and date(tlg.time_stop) <= @time_stop
          and mttl.type IN (@billable_types)
            and tlg.task_id = mttl.id
    group by start_date
    order by start_date desc;

Would be very grateful for help.


Fast forward a while, I ended up with the following quick and dirty solution which doesn't give me the flexibility of re-using the array elsewhere in the code but hey it's an unchargeable admin task so I don't want to spend any more time on it.

SELECT WEEKDAY(tlg.time_start) AS day_of_week, date(tlg.time_start) as start_date,
                            sum((time_to_sec(timediff(tlg.time_stop, tlg.time_start))/3600)) as billable_hours
                    from mod_tmlog_time_log tlg, mod_tmlog_task_list mttl
                    where date(tlg.time_start) >= @time_start
                          and date(tlg.time_stop) <= @time_stop
                          and mttl.type IN ('c1','c2','c3')
                            and tlg.task_id = mttl.id
                    group by start_date
                    order by start_date desc;

joostschouten seems to have found the most elegant solution (not tested it myself yet) but next time I'm writing something which calls for this I will remember to test it!

share|improve this question
2  
there's no such thing as arrays in SQL - there's only sets. Unfortunately, what you're trying to doesn't work - mysql will replace @billtable_types with the contents of your "array" as a single monolithic string, and not consider it as a bunch of separate comma-separated values. Try using the FIND_IN_SET() function instead of the IN operator. – Marc B Jul 11 '12 at 3:10

Just found the answer here: How to cycle with an array in mysql?

set @billable_types = 'client1,client2,client3';
select * from mttl where find_in_set(mttl.type, @billable_types);
share|improve this answer
1  
the "in" keyword does not exist Error Code: 1064 You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'in @billable_types) – Mindwin Feb 5 '14 at 14:17

As Marc B mentioned, there is no array variable in MYSQL.

The alternative to find_in_set solution is to use SELECT with UNION to simulate the array:

SELECT billable_type FROM (
  SELECT 'client1' AS billable_type UNION
  SELECT 'client2' AS billable_type UNION
  SELECT 'client3' AS billable_type) AS t

So your query will looks like that:

SELECT sum((time_to_sec(timediff(tlg.time_stop, tlg.time_start))/3600)) as billable_hours
     from mod_tmlog_time_log tlg, mod_tmlog_task_list mttl
     where date(tlg.time_start) >= @time_start
          and date(tlg.time_stop) <= @time_stop
          and mttl.type IN (

            SELECT billable_type FROM (
              SELECT 'client1' AS billable_type UNION
              SELECT 'client2' AS billable_type UNION
              SELECT 'client3' AS billable_type) AS t

          )
             and tlg.task_id = mttl.id
     group by start_date
     order by start_date desc;
share|improve this answer
    
As this thread has surfaced again I will edit my original question and add what I ended up doing. – shortwave May 9 '14 at 5:28

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.