0

we have attendance db data as follows (sql server)

empid       date          type
1           01-Jan         In
1           01-Jan         Out
2           01-Jan         In
3           01-Jan         In
3           01-Jan         Out

How can we get records that have only 1 record per date per employee (in above case empid 2 for 01-jan)?

The query should simply list all records of employees that have only single type for a day.

EDIT

The result set should be a bit more specific: show all employee who only have "In" for a date but no "Out"

  • What have you tried so far? Why didn't what you tried work? Did you get an error, unexpected results? If you haven't tried, why not? When you searched for a solution what didn't you understand about the articles/documentation/examples you read? – Larnu Jun 12 at 10:24
  • @Larnu you're right..... – Shawn.X Jun 12 at 10:27
  • @Larnu i thought of trying group by and having but that did not help in identifying the requirement that "show records in which date that an employee only checked out and not In" – Abdul Ali Jun 12 at 10:45
1

Use a correlated subquery

select * from tablename a
where not exists (select 1 from tablename b where a.empid=b.empid and  a.date=b.date and type='Out')

OR

select empid, date,count(distinct type)
from tablename
group by empid,date
having count(distinct type)=1
3

Use Having

select empid, date, count(*)
from Mytable
group by empid, date
having count(*) = 1

You can use this to get the full line:

select t1.*
from MyTable t1
inner join 
(
    select empid, date, count(*)
    from Mytable
    group by empid, date
    having count(*) = 1
) t2
on t1.empid = t2.empid
and t1.date = t2.date
  • Keep in mind the second query can and will select "duplicated" records on the empid and date column – Raymond Nijland Jun 12 at 10:37
  • thank you for the answer , but can it handle the case that show only the records which have an Out but no In – Abdul Ali Jun 12 at 10:42
2

You can use window functions:

select t.*
from (select t.*,
             count(*) over (partition by empid, date) as cnt
      from t
     ) t
where cnt = 1;

You can also use aggregation:

select empid, date, max(type) as type
from t
group by empid, date
having count(*) = 1;
0

The Solution is Very Simple, You can use 'DISTINCT' function. Query Should be as,

SELECT DISTINCT empid FROM attendance

This will return only 1 record per date per employee.

For Your Reference, Check it out- https://www.techonthenet.com/sql_server/distinct.php

  • Maybe you should read about the formatting option which are available to use on this website as you are new here. – Raymond Nijland Jun 12 at 10:32
  • But this answer is wrong as it also will select empid which has more then one record.. – Raymond Nijland Jun 12 at 10:35
  • Your answer will return all employees, while OP is looking for a solution that will only return emp#2. – Yaron Idan Jun 12 at 10:36
0

This will work if we have ID with 1 IN OR 1 OUT as well

Declare @t table (empid int,date varchar(50),types varchar(50))

insert into @t values (1,'01-Jan','IN')
insert into @t values (1,'01-Jan','OUT')
insert into @t values (2,'01-Jan','IN')
insert into @t values (3,'01-Jan','OUT')
insert into @t values (4,'01-Jan','OUT')

select * from @t a
where not exists (select 1 from @t b where a.empid=b.empid and a.types!=b.types)

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