Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

The heading of this question is probably poorly worded as I am finding it difficult to explain concisely what I want, other than to provide some demo data.

I have a query which returns the following data from a sql table:

ID    Job    User    Amount

1     101    Bob     100
2     101    Pete    500
3     102    Bob     400
4     102    Pete    200
5     101    Pete    850
6     102    Bob     650

What I want is the query to also return an additional field called (Difference), which contains the difference between the Amount in consecutive entries for the same User and Job. Hence the data I would like returned would be as follows:

ID    Job    User    Amount   Diff

1     101    Bob      100     100
2     101    Pete     500     500
3     102    Bob      400     400
4     102    Pete     200     200
5     101    Pete     850     350
6     102    Bob      650     250

In the first four rows, the Diff is the same as the Amount because each is the first entry per User per Job (hence the Difference is calculated with reference to a starting Amount of nil in effect).

The last two lines contain information for a User and Job combination that have appeared in the table previously, and hence Diff is calculated as follows:

Job 101    User Pete    850 - 500 = 350
Job 102    User Bob     650 - 400 = 250

I've never had to compare data from rows like this in a SQL query before so don't really know where to start. Any help would be much appreciated.

Added

Please note the Amount is not a running total. It is a subjective assessment made periodically of the value of a User's input in each particular job. It is possible that the Amount could in fact go down from one assessment to the next. What I want is a query that returns the difference between successive assessments 'Amounts'.

Alternative Explanation

I'm looking to return a history trail of movements in the Amount assessed. So another example, looking at a single Job and User is as follows:

Job    User    Amount    Movement

101    Bob      100       100
101    Bob      500       400
101    Bob      400      (100)
101    Bob    1,000       600

However, as per the original example, this information will need to be extracted from a table which contains many Jobs and Users all intermingled.

share|improve this question
    
What version of SQL Server please? – gbn Jan 17 '13 at 15:30
    
Also, why is ID=5 Amount 850 but ID=6 Amount 650? For ID 5, you have summed Amounts for previous 101,Pete pairs. But for ID 6, you have the current amount. And is it "first value" per pair? Or "previous value" per pair? – gbn Jan 17 '13 at 15:38
    
Lacking a date/time column, is consecutive defined by the order of ID values? – HABO Jan 17 '13 at 15:40
    
The Amounts are individual to the User and are not Job Totals, so ID 5 and 6 are correct. There is also a Date field (and others) but I didn't include in order to keep the sample data concise. – PJW Jan 17 '13 at 15:46
3  
Wow. Downvote now. We can't get your desired result because you have given us inconsistent data. Fix it or delete it or have it closed for you – gbn Jan 17 '13 at 15:57
up vote 3 down vote accepted

For SQL Server 2012, try this

This assumes that ID=5 value is wrong in your example

For "previous value" per pair

DECLARE @t TABLE (ID int, Job int, Username varchar(10), Amount int);
INSERT @t
VALUES
    (1, 101, 'Bob', 100), (2, 101, 'Pete', 500), (3, 102, 'Bob', 400),
    (4, 102, 'Pete', 200), (5, 101, 'Pete', 850), (6, 102, 'Bob', 650);

SELECT
    t1.*,
    t1.Amount - ISNULL(LAG(Amount) OVER (PARTITION BY Job, Username ORDER BY ID), 0) AS DiffAmount
FROM
    @t t1
ORDER BY
   t1.ID

For "first value" per pair

SELECT
    t1.*,
    CASE
        WHEN FIRST_VALUE(t1.ID) OVER (PARTITION BY Job, Username ORDER BY ID) = t1.ID THEN t1.Amount
        ELSE t1.Amount - FIRST_VALUE(t1.Amount) OVER (PARTITION BY Job, Username ORDER BY ID)
    END AS DiffAmount
FROM
    @t t1
ORDER BY
    t1.ID
share|improve this answer
    
The Amounts are individual to the User and are not Job Totals, so ID 5 and 6 are correct. There is also a Date field (and others) but I didn't include in order to keep the sample data concise. – PJW Jan 17 '13 at 15:46
    
@PJW: updated to have 850 in the source data – gbn Jan 17 '13 at 16:15
1  
Despite all the arguments about arithmetic, the PARTITION and LAG keywords were what I was looking for and enabled me to draft a solution. – PJW Jan 17 '13 at 17:25
    
@PJW: we got there though... :-) – gbn Jan 17 '13 at 18:20

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.