33

Is there any way to get row number for each record in BigQuery? (From the specs, I haven't seen anything about it) There is a NTH() function, but that applies to repeated fields.

There are some scenarios where row number is not necessary in BigQuery, such as the use of TOP() or LIMIT function. However, I need it to simulate some analytical functions, such as a cumulative sum(). For that purpose I need to identify each record with a sequential number. Any workaround on this?

Thanks in advance for your help!

Leo

7 Answers 7

64

2018 update: If all you want is a unique id for each row

#standardSQL
SELECT GENERATE_UUID() uuid
 , * 
FROM table

2018 #standardSQL solution:

SELECT
  ROW_NUMBER() OVER() row_number, contributor_username,
  count
FROM (
  SELECT contributor_username, COUNT(*) count
  FROM `publicdata.samples.wikipedia`
  GROUP BY contributor_username
  ORDER BY COUNT DESC
  LIMIT 5)

But what about "Resources exceeded during query execution: The query could not be executed in the allotted memory. OVER() operator used too much memory.."

Ok, let's reproduce that error:

SELECT *, ROW_NUMBER() OVER() 
FROM `publicdata.samples.natality` 

Yes - that happens because OVER() needs to fit all data into one VM - which you can solve with PARTITION:

SELECT *, ROW_NUMBER() OVER(PARTITION BY year, month) rn 
FROM `publicdata.samples.natality` 

"But now many rows have the same row number and all I wanted was a different id for each row"

Ok, ok. Let's use partitions to give a row number to each row, and let's combine that row number with the partition fields to get an unique id per row:

SELECT *
  , FORMAT('%i-%i-%i', year, month, ROW_NUMBER() OVER(PARTITION BY year, month)) id
FROM `publicdata.samples.natality` 

enter image description here


The original 2013 solution:

Good news: BigQuery now has a row_number function.

Simple example:

SELECT [field], ROW_NUMBER() OVER()
FROM [table]
GROUP BY [field]

More complex, working example:

SELECT
  ROW_NUMBER() OVER() row_number,
  contributor_username,
  count,
FROM (
  SELECT contributor_username, COUNT(*) count,
  FROM [publicdata:samples.wikipedia]
  GROUP BY contributor_username
  ORDER BY COUNT DESC
  LIMIT 5)
2
  • How do we filter on that ROW_NUMBER column? (i.e. ROW_NUMBER() > 10 etc.)
    – Praxiteles
    Commented May 29, 2016 at 19:57
  • Sub query. Please post new question for full answer, if needed! Commented May 30, 2016 at 20:26
3

Another HACK would be to go along the lines of:

SELECT *
FROM UNNEST(ARRAY(
    SELECT myColumn FROM myTable
)) AS myValue WITH OFFSET off

This gives you a resultset with 2 colums: myValue and off.

Benefit of this is that you could also use off in WHERE clauses create a non deterministic LIMIT, e.g. WHERE off < (SELECT SUM(amount) FROM mySecondTable)

Note that I do not consider this a viable alternative for large amounts of data. But it might suit your use case.

0

We don't expose a row identifier. Can you simply add one to your data when you import it?

2
  • Thanks for your answer Ryan. Even we could import row identifier in our imports, it wouldn't be useful since we need the row number after applying a group function over the original data.
    – Leo Stefa
    Commented Jun 18, 2012 at 13:32
  • So you're looking for a result row #, not a row # that represents each row of the underlying data?
    – Ryan Boyd
    Commented Jun 18, 2012 at 23:59
0

I thought maybe I could get around the lack of a ROW_NUMBER() function by joining a table to itself on a <= and then doing a count(*) on the results (which is how you do it sometimes in MySQL). Turns out, BigQuery only supports joins on straight-up "=".

Foiled again. I think this is impossible in BQ.

0

I recently came upon this problem but my use case needed a continuous row number from start to end. Probably not ideal but leaving it here in case it can help someone.

I use a guide table with offsets for each partition to be added to all its rows. This offset is the sum count of rows in all it's preceding partitions.

select offset+ROW_NUMBER() OVER(PARTITION BY partitionDate) rowId
from `sample.example` input
left join
      (select partitions.partitionDate, partitions.count, SUM(duplicate.count)-partitions.count as offset
       from (
           select date(_PARTITIONTIME) partitionDate,COUNT(1) count 
           FROM `sample.example` 
           where date(_PARTITIONTIME) >= "2020-01-01" 
           group by _PARTITIONTIME) partitions
      inner join (
           select date(_PARTITIONTIME) partitionDate,COUNT(1) count 
           FROM `sample.example`
           where date(_PARTITIONTIME) >= "2020-01-01" 
           group by _PARTITIONTIME) duplicate 
      on partitions.partitionDate >= duplicate.partitionDate
      group by partitions.partitionDate, partitions.count
      order by partitions.partitionDate) guide
on date(_PARTITIONTIME) = guide.partitionDate
where date(_PARTITIONTIME) >= "2020-01-01" 
order by partitionDate
0

I think, to avoid "Resources exceeded during query execution" while using OVER() with ORDER BY or PARTITION

SELECT *, ROW_NUMBER() OVER(row_number_partition) rn 
FROM `publicdata.samples.natality` 
WINDOW
row_number_partition AS
(PARTITION BY year, month)
0

A simple query to add an increasing number to all your rows :)


SELECT ROW_NUMBER() OVER (PARTITION BY 'hola') as row_number, * 
FROM <table>

Of course this is a hack.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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