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 have a table with an object, index, date and value:

+--------------+-------+------------+------------+
| object       | index | date       | value      |
+--------------+-------+------------+------------+
| 32           | 1     | 2011-02-25 | 2100000000 | 
| 32           | 2     | 2011-02-25 | 27800000   | 
| 32           | 3     | 2011-02-25 | 5700000    | 
| 32           | 1     | 2011-02-26 | 2100000000 | 
| 32           | 2     | 2011-02-26 | 28700000   | 
| 32           | 3     | 2011-02-26 | 5800000    | 
| 32           | 1     | 2011-02-27 | 2200000000 | 
| 32           | 2     | 2011-02-27 | 29500000   | 
| 32           | 3     | 2011-02-27 | 5900000    | 
+--------------+-------+------------+------------+

and I need a query with the difference of the value between two consecutive days for every objectindex so something like this

+--------------+-------+------------+------------+
| object       | index | date       | value_24h  |
+--------------+-------+------------+------------+
| 32           | 1     | 2011-02-26 | 0          | 
| 32           | 2     | 2011-02-26 | 0          | 
| 32           | 3     | 2011-02-26 | 100000     | 
| 32           | 1     | 2011-02-27 | 100000000  | 
| 32           | 2     | 2011-02-27 | 800000     | 
| 32           | 3     | 2011-02-27 | 100000     | 
+--------------+-------+------------+------------+

Is this possible in mysql or do I better calculate these values in my program (python). Or would a different/better table layout help?

Thanks,
Michael

share|improve this question

2 Answers 2

up vote 0 down vote accepted
SELECT t2.object,t2.index,t2.date,t2.value-t1.value
FROM table t1, table t2
    WHERE t1.object=t2.object AND t1.index=t2.index
        AND t2.date=DATE_ADD(t1.date, INTERVAL 1 DAY);
share|improve this answer

You can try using variables:

SELECT object, `index`, `date`, value, diff
FROM (
    SELECT object, `index`, `date`, value,
        IF (@idx = `index`, value - @prev, 0) AS diff,
        @idx := `index`,
        @prev := value
    FROM tableName, (SELECT @idx := NULL, @prev := NULL) dm
    ORDER BY `index`, `date`
) rs
ORDER BY `date`, `index`

Note: This will work if you are querying a single object (as shown in the OP), if this is not the case, you will need to add another level of variables to track the object:

SELECT object, `index`, `date`, value, diff
FROM (
    SELECT object, `index`, `date`, value,
        IF (@obj = object AND @idx = `index`, value - @prev, 0) AS diff,
        @obj := object,
        @idx := `index`,
        @prev := value
    FROM tableName, (SELECT @obj := NULL, @idx := NULL, @prev := NULL) dm
    ORDER BY object, `index`, `date`
) rs
ORDER BY object, `date`, `index`
share|improve this answer

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.