SQL: How To Select Earliest Row
I have a report that looks something like this:
CompanyA Workflow27 June5
CompanyA Workflow27 June8
CompanyA Workflow27 June12
CompanyB Workflow13 Apr4
CompanyB Workflow13 Apr9
CompanyB Workflow20 Dec11
CompanyB Wofkflow20 Dec17
This is done with SQL (specifically, T-SQL version Server 2005):
SELECT company
, workflow
, date
FROM workflowTable
I would like the report to show just the earliest dates for each workflow:
CompanyA Workflow27 June5
CompanyB Workflow13 Apr4
CompanyB Workflow20 Dec11
Any ideas? I can't figure this out. I've tried using a nested select that returns the earliest tray date, and then setting that in the WHERE clause. This works great if there were only one company:
SELECT company
, workflow
, date
FROM workflowTable
WHERE date = (SELECT TOP 1 date
FROM workflowTa开发者_Python百科ble
ORDER BY date)
but this obviously won't work if there is more than one company in that table. Any help is appreciated!
Simply use min()
SELECT company, workflow, MIN(date)
FROM workflowTable
GROUP BY company, workflow
In this case a relatively simple GROUP BY
can work, but in general, when there are additional columns where you can't order by but you want them from the particular row which they are associated with, you can either join back to the detail using all the parts of the key or use OVER()
:
Runnable example (Wofkflow20 error in original data corrected)
;WITH partitioned AS (
SELECT company
,workflow
,date
,other_columns
,ROW_NUMBER() OVER(PARTITION BY company, workflow
ORDER BY date) AS seq
FROM workflowTable
)
SELECT *
FROM partitioned WHERE seq = 1
SELECT company
, workflow
, MIN(date)
FROM workflowTable
GROUP BY company
, workflow
select company ,workflow ,min(date)
from workflowTable
group by company
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