37

I have a table with following structure

ID     Account Number     Date
1      1001               10/9/2011 (dd/mm/yyyy)
2      2001               1/9/2011 (dd/mm/yyyy)
3      2001               3/9/2011 (dd/mm/yyyy)
4      1001               12/9/2011 (dd/mm/yyyy)
5      3001               18/9/2011 (dd/mm/yyyy)
6      1001               20/9/2011 (dd/mm/yyyy)

Basically what i would like to do is have an access query that calculates the date difference for consecutive records but for the same account number The expected result would be !!

1001      10/9/2011 - 12/9/2011     2 days
1001      12/9/2011 - 20/9/2011     8 days
1001      20/9/2011                 NA

Basically what i would like to do is have an access query that calculates the date difference for consecutive records but for the same account number , in the above example would be 1001. (the dates don't have to be shown in the result)

I use access 2003.

56
SELECT  T1.ID, 
        T1.AccountNumber, 
        T1.Date, 
        MIN(T2.Date) AS Date2, 
        DATEDIFF("D", T1.Date, MIN(T2.Date)) AS DaysDiff
FROM    YourTable T1
        LEFT JOIN YourTable T2
            ON T1.AccountNumber = T2.Accountnumber
            AND T2.Date > T1.Date
GROUP BY T1.ID, T1.AccountNumber, T1.Date;

or

SELECT  ID,
        AccountNumber,
        Date,
        NextDate,
        DATEDIFF("D", Date, NextDate)
FROM    (   SELECT  ID, 
                    AccountNumber,
                    Date,
                    (   SELECT  MIN(Date) 
                        FROM    YourTable T2
                        WHERE   T2.Accountnumber = T1.AccountNumber
                        AND     T2.Date > T1.Date
                    ) AS NextDate
            FROM    YourTable T1
        ) AS T
| improve this answer | |
  • The second one worked perfectly , thanks. Is there a possibility that i can avoid the last one , which is 1000 20/9/2011 NA from showing up on the result... as this has no other date to compare with. Thanks again for the help. – Mohammed Rishal Apr 4 '12 at 1:43
  • Add WHERE NextDate IS NOT NULL after AS T to the second query, or change the LEFT JOIN to an INNER JOIN on the top query. – GarethD Apr 4 '12 at 6:25
  • Hi, I have posted another question which is a variant of the above requirement, Could you please have a look at it Thanks !! – Mohammed Rishal Apr 11 '12 at 1:08
  • Is the reference to DateConsec in the innermost query of the second answer the same as YourTable in the next query outwards, and in the first answer? If not, what is it? – Jonathan Leffler Apr 15 '12 at 0:24
  • Sorry, yes is is. It was the table I created to test it. I have changed this to your table to avoid future confusion. – GarethD Apr 15 '12 at 15:37
5

you ca also use LAG analytical function to get the desired results as :

Suppose below is your input table:

id  account_number  account_date
1     1001          9/10/2011
2     2001          9/1/2011
3     2001          9/3/2011
4     1001          9/12/2011
5     3001          9/18/2011
6     1001          9/20/2011


select id,account_number,account_date,
datediff(day,lag(account_date,1) over (partition by account_number order by account_date asc),account_date)
as day_diffrence
from yourtable;

Here is your output:

id  account_number  account_date    day_diffrence
1     1001           9/10/2011    NULL
4     1001           9/12/2011    2
6     1001           9/20/2011    8
2     2001           9/1/2011     NULL
3     2001           9/3/2011     2
5     3001           9/18/2011    NULL
| improve this answer | |
  • 2
    The question is tagged with MS Access, and as far as I know Access does not support analytical functions. The question also states the OP is using Access 2003 which definitely does not support the LAG() function. So while this is a good approach for other DBMS, this is not an answer to this question. Also, the OP wants the difference between the current row and the next date, so you would need to use LEAD() rather than LAG() – GarethD May 23 '19 at 13:12
  • @GarethD-- oops. I didn't noticed that. Thanks :-) – vikrant rana May 23 '19 at 13:47
2

You can add a WHERE statement for the account number, if required. Your table is called t4

SELECT 
   t4.ID, 
   t4.AccountNumber, 
   t4.AcDate, 
   (SELECT TOP 1 AcDate 
    FROM t4 b 
    WHERE b.AccountNumber=t4.AccountNumber And b.AcDate>t4.AcDate 
    ORDER BY AcDate DESC, ID) AS NextDate, 
   [NextDate]-[AcDate] AS Diff
FROM t4
ORDER BY t4.AcDate;
| improve this answer | |
0

try this:

select [Account Number], DATEDIFF(DD, min(date), max(date)) as dif
from your_table
group by [Account Number]
| improve this answer | |
  • true. did not realize the ID was a key. I thought it was part of the account somehow. thanks – Diego Apr 3 '12 at 14:47
  • @Diego : i think the query you have provided will only provide date difference between first and last date and not between all the dates !!!! correct ? – Mohammed Rishal Apr 4 '12 at 2:31
  • difference on each account number. isn't that what you needded? – Diego Apr 4 '12 at 8:07
0

GarethD's answer worked for me perfectly.

FYI: When you need ORDER BY clause, please use it at the end of SELECT query in the root.

SELECT  ConsignorID,
            DateRequired StartDate,
            NextDate,
            DATEDIFF("D", DateRequired, NextDate)
FROM (  SELECT  ConsignorID,
                DateRequired,
                (SELECT MIN(DateRequired) 
                 FROM "TABLENAME" T2
                 WHERE T2.DateRequired > T1.DateRequired
                ) AS NextDate
            FROM "TABLENAME" T1
        ) AS T

ORDER BY T.DateRequired ASC

| improve this answer | |
-1
SELECT  ID,
        AccountNumber,
        Date,
        NextDate,
        DATEDIFF("D", Date, NextDate)
FROM    (   SELECT  ID, 
                    AccountNumber,
                    Date,
                    (   SELECT  MIN(Date) 
                        FROM    YourTable T2
                        WHERE   T2.Accountnumber = T1.AccountNumber
                        AND     T2.Date > T1.Date
                    ) AS NextDate
            FROM    YourTable T1
        ) AS T
| improve this answer | |

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