76

Simple question but i can't manage to solve it yet...

I have a table TEST with a DATETIME field, like this :

ID NAME DATE
1 TESTING 2014-03-19 20:05:20.000

What i need is the query below returns this row and every rows with date = 03/19/2014, no matter what time is :

select * from test where date = '03/19/2014';

But it returns no rows. Only way to work is specifying also the time :

select * from test where date = '03/19/2014 20:03:02.000';

Thanks in advance !

16 Answers 16

113

use range, or DateDiff function

 select * from test 
 where date between '03/19/2014' and '03/19/2014 23:59:59'

or

 select * from test 
 where datediff(day, date, '03/19/2014') = 0

Other options are:

  1. If you have control over the database schema, and you don't need the time data, take it out.

  2. or, if you must keep it, add a computed column attribute that has the time portion of the date value stripped off...

Alter table Test Add DateOnly As DateAdd(day, datediff(day, 0, date), 0)

or, in more recent versions of SQL Server...

Alter table Test Add DateOnly As Cast(DateAdd(day, datediff(day, 0, date), 0) as Date)

then, you can write your query as simply:

select * from test 
where DateOnly = '03/19/2014'
  • Ok, this works, but i was wondering if is there any easier way. – delphirules Mar 19 '14 at 13:31
  • Well, the only other easier way is not to put time data into the database in the first place... or create a computed attribute that strips off the time portion and use it... I added both options to my answer. – Charles Bretana Mar 19 '14 at 14:48
  • I was concerned that the DATEDIFF method would return true (undesirably) for dates like 4/19/2014 or 3/19/2015, as the 'day' portion of those dates is the same (and I had seen reports elsewhere that it would act in this way), but I tested it against a database, and it seems to work correctly. – mono código Jan 5 '16 at 19:29
  • Yes, because the DateDiff() function, in all its variants, computes and returns the number of date boundaries that must be crossed to get frlom one date to the other. This is why DateDiff(day, '1Jan2016', '31Dec2017 23:259:59') and DateDiff(day, '31Dec2016 23:259:59', '1Jan2017 ') both return 1. – Charles Bretana Jan 25 '17 at 15:49
46

Simple answer;

select * from test where cast ([date] as date) = '03/19/2014';
  • While this is a valid answer I want to point putting the date field evaluating behind any function will lead to performance problems. Any index on the date will be useless and the engine will need to evaluate each row – jean Dec 12 '19 at 12:10
18

I am using MySQL 5.6 and there is a DATE function to extract only the date part from date time. So the simple solution to the question is -

 select * from test where DATE(date) = '2014-03-19';

http://dev.mysql.com/doc/refman/5.6/en/date-and-time-functions.html

  • 1
    question is about sql server – Kiquenet Jul 16 '19 at 9:13
5
select * from test 
where date between '03/19/2014' and '03/19/2014 23:59:59'

This is a realy bad answer. For two reasons.

1. What happens with times like 23.59.59.700 etc. There are times larger than 23:59:59 and the next day.

2. The behaviour depends on the datatype. The query behaves differently for datetime/date/datetime2 types.

Testing with 23:59:59.999 makes it even worse because depending on the datetype you get different roundings.

select convert (varchar(40),convert(date      , '2014-03-19 23:59:59.999'))
select convert (varchar(40),convert(datetime  , '2014-03-19 23:59:59.999'))
select convert (varchar(40),convert(datetime2 , '2014-03-19 23:59:59.999'))

-- For date the value is 'chopped'. -- For datetime the value is rounded up to the next date. (Nearest value). -- For datetime2 the value is precise.

5

This works for me for MS SQL server:

select * from test
where 
year(date) = 2015
and month(date) = 10
and day(date)= 28 ;
2

Try this

 select * from test where Convert(varchar, date,111)= '03/19/2014'
1

you can try this

select * from test where DATEADD(dd, 0, DATEDIFF(dd, 0, date)) = '03/19/2014';
  • 1
    Thank you, but i think the simpler solution would be a comparison with time, just like the previous solution. – delphirules Mar 19 '14 at 13:46
0

You can use this approach which truncates the time part:

select * from test
where convert(datetime,'03/19/2014',102) = DATEADD(dd, DATEDIFF(dd, 0, date), 0)
0
-- Reverse the date format
-- this false:
    select * from test where date = '28/10/2015'
-- this true:
    select * from test where date = '2015/10/28'
  • Please add some explanation to your answer! – ρss Nov 6 '15 at 14:16
  • This doesn't work because '2015/10/28 00:00.001' is different from '2015/10/28' – PedroC88 Jan 5 '16 at 21:14
0

Simply use this in your WHERE clause.

The "SubmitDate" portion below is the column name, so insert your own.

This will return only the "Year" portion of the results, omitting the mins etc.

Where datepart(year, SubmitDate) = '2017'
0
select *, cast ([col1] as date) <name of the column> from test where date = 'mm/dd/yyyy'

"col1" is name of the column with date and time
<name of the column> here you can change name as desired

0
select *
  from invoice
 where TRUNC(created_date) <=TRUNC(to_date('04-MAR-18 15:00:00','dd-mon-yy hh24:mi:ss'));
0

There is a problem with dates and languages and the way to avoid it is asking for dates with this format YYYYMMDD.

This way below should be the fastest according to the link below. I checked in SQL Server 2012 and I agree with the link.

select * from test where date >= '20141903' AND date < DATEADD(DAY, 1, '20141903');
-1

Test this query.

SELECT *,DATE(chat_reg_date) AS is_date,TIME(chat_reg_time) AS is_time FROM chat WHERE chat_inbox_key='$chat_key' 
                         ORDER BY is_date DESC, is_time DESC
-1
select * from invoice where TRANS_DATE_D>= to_date  ('20170831115959','YYYYMMDDHH24MISS')
and TRANS_DATE_D<= to_date  ('20171031115959','YYYYMMDDHH24MISS');
  • I think this is Oracle syntax, do not work at sql server – ceinmart Mar 14 '18 at 13:53
-2
SELECT * FROM test where DATEPART(year,[TIMESTAMP]) = '2018'  and  DATEPART(day,[TIMESTAMP]) = '16' and  DATEPART(month,[TIMESTAMP]) = '11'

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