Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to build a query that analyzes data in our time tracking system. Every time a user punches in or out, it makes a row recording the punch time. So if you punch in at 9:00 and punch out at 5:00 there are two rows with those date stamps recorded accordingly. I need a query that will iterate over the rows at basically sum the datediff between workingpunch_ts (the timestamp column) in hours.

Each row does have an identifier that signifies if the punch is a punch in, or punch out (inout_id, 1 for in, 2 for out).

So for example if you had

ID  | workingpunch_ts         | inout_id
----------------------------------------------
123 | 2011-02-16 09:00:00.000 | 1
124 | 2011-02-16 17:00:00.000 | 2

That would yield a 8 hours. Now I just need to repeat that process for every pair of rows in the table.

Thoughts on how to accomplish this?

share|improve this question
    
there should be some user identifier perhaps that you want to group all the sums for? or do you want the sum for the whole table? –  Kris Ivanov Feb 23 '11 at 21:19
add comment

2 Answers

up vote 0 down vote accepted

In hours, sure

select empid, cast(datediff(d,0,workingpunch_ts) as datetime),
    SUM(case when inout_id = 2 then 1 else -1 end *
    datediff(MI, datediff(d,0,workingpunch_ts), workingpunch_ts))/60.0 as Hours
from clock
where workingpunch_ts between '20110201' and '20110228 23:59:59.999'
group by empid, datediff(d,0,workingpunch_ts)

As long as the in and outs are paired, you add all the outs and remove all the ins, e.g.

 - IN  (9)
 + OUT (12)
 - IN  (13:15)
 + OUT (17)

The main code is in the 2nd and 3rd lines
The datediff-datediff works out the minutes from midnight for each workingpunch_ts, and if it is a punchout, it is made negative using the CASE inout_id statement.

The others are added for real life scenarios where you need to group by employee and day, within a date range.

share|improve this answer
    
You are a genius good sir. Thank you so much. I don't quite know how you constructed such wizardry but I am in your debt ;) Thank you. –  Kenji776 Feb 23 '11 at 22:52
    
New to the site, looking for the accept button XD –  Kenji776 Feb 23 '11 at 23:19
add comment

This query will give you problems if people punch in and out multiple times on the same day:

Table schema:

CREATE TABLE [dbo].[TimePunch](
    [TimeCardID] [int] IDENTITY(1,1) NOT NULL,
    [PunchTime] [datetime] NOT NULL,
    [InOrOut] [int] NOT NULL,
    [UserID] [int] NOT NULL,
    [DayofPunch] [datetime] NOT NULL,
 CONSTRAINT [PK_TimePunch] PRIMARY KEY CLUSTERED 
(
    [TimeCardID] ASC
)WITH (PAD_INDEX  = OFF, STATISTICS_NORECOMPUTE  = OFF, IGNORE_DUP_KEY = OFF, ALLOW_ROW_LOCKS  = ON, ALLOW_PAGE_LOCKS  = ON, FILLFACTOR = 10) ON [PRIMARY]
) ON [PRIMARY]

Query:

select 
    tIn.UserID,
    tIn.DayOfPunch,
    DateDiff(Hour, tIn.PunchTime, tOut.PunchTime) as HoursWorked
FROM
    TimePunch tIn,
    TimePunch tOut
WHERE
    tIn.InOrOut = 1
AND tOut.InOrOut = 2
AND tIn.UserID = tOut.UserID
AND tIn.DayofPunch = tOut.DayOfPunch
share|improve this answer
    
You will also be in trouble if one punches in on a given day but out after midnight –  bjorsig Feb 23 '11 at 21:30
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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