11

I have a Google Big Query Table that has an email column in it. Basically each rows shows a state the user with that email address existed in. What I want to do is query the table to get a result showing the most recent row per email address. I've tried all sorts of GROUP BY's, JOINing the table against itself and the usual fun stuff that I would use in MySQL, but I keep getting duplicate emails returned if the entire row isn't a match.

Any help is much appreciated!

Sample Data

user_email     | user_first_name | user_last_name | time      | is_deleted
[email protected]  | Joe             | John           | 123456790 |  1
[email protected]  | Joe             | John           | 123456789 |  0
[email protected] | Jill            | John           | 123456789 |  0

So if sampling that data I would want to return:

user_email     | user_first_name | user_last_name | time      | is_deleted
[email protected]  | Joe             | John           | 123456790 |  1
[email protected] | Jill            | John           | 123456789 |  0

3 Answers 3

19
SELECT user_email, user_first_name, user_last_name, time, is_deleted 
FROM (
 SELECT user_email, user_first_name, user_last_name, time, is_deleted
      , RANK() OVER(PARTITION BY user_email ORDER BY time DESC) rank
 FROM table
)
WHERE rank=1
3
  • How would you do the same thing if your table contains nested and repeated fields ?
    – mravey
    Commented Jan 29, 2016 at 12:52
  • If you can provide a sample table with nested and repeated fields, I'll do my best to provide an answer. Please start a new question too! Commented Jan 30, 2016 at 4:48
  • Ok, I've created a new question that you can find here: stackoverflow.com/questions/35150732/…
    – mravey
    Commented Feb 2, 2016 at 10:22
3

There is a potential shortcoming of the use of RANK() over the alternative numbering function ROW_NUMBER(). The accepted answer does provide the desired solution, except in the event in a tie in the order by clause, were duplicate records are again returned:

with minimal_reproducible as (
select '[email protected]' as user_email, 'Joe' as user_first_name, 'John' as user_last_name, 123456789 as time, 1 is_deleted
union all
select '[email protected]', 'Joe', 'John', 123456789, 0
union all
select '[email protected]', 'Jill', 'John', 123456789, 0
)

select user_email, user_first_name, user_last_name, time, is_deleted from (
    select *, 
    rank() over (partition by user_email order by time desc) as rank
    from minimal_reproducible) inner_table 
where rank = 1;

A better solution therefore is to use ROW_NUMBER() in the place of RANK() to ensure (albeit arbitrarily) unique user_email come what may:

with minimal_reproducible as (
select '[email protected]' as user_email, 'Joe' as user_first_name, 'John' as user_last_name, 123456789 as time, 1 is_deleted
union all
select '[email protected]', 'Joe', 'John', 123456789, 0
union all
select '[email protected]', 'Jill', 'John', 123456789, 0
)

select user_email, user_first_name, user_last_name, time, is_deleted from (
    select *, 
    row_number() over (partition by user_email order by time desc) as row_number
    from minimal_reproducible) inner_table 
where row_number = 1;
2

Solved!

SELECT l.* FROM [mytable.list] l JOIN (
    SELECT user_email, MAX(time) as time FROM [mytable.list] GROUP EACH BY user_email
) j ON j.user_email = l.user_email WHERE j.time = l.time;
3
  • Good! Take a look at using OVER() functions too, look at the alternative answer. Commented Aug 12, 2014 at 17:36
  • Thanks @FelipeHoffa, What is the benefit and/or contrast of using your solution? Commented Aug 13, 2014 at 23:22
  • @FelipeHoffa I agree, add some explaining with your solution please. Commented Aug 14, 2014 at 5:55

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