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Here's my problem. My system stores dates and times in your usual DATETIME format:

'YYYY-MM-DD HH:MM:SS'

This is what I have trouble with:

I need to select all the contacts that have a date field in this format:

'XXXX-12-02 23:59:59' and every other date 7 days leading up to it.

For example, I would need to get all these rows with these dates in response:

1965-12-02
1985-11-28
1990-12-01

Is this possible and if it is, any help or tips that you can give me?

share|improve this question
    
Please explian "and every other date 7 days leading up to it" – Sashi Kant Nov 27 '12 at 8:41
    
I think he means the range (DATE - 7 days --> DATE) – jimpic Nov 27 '12 at 8:44
    
Yeah, I mean: DATE <= X < DATE-7 – kristovaher Nov 27 '12 at 11:23

you can get a specific info about your DATETIME variable by calling the following function

  • DAY(your DATETIME Variable) --gets day as integer
  • MONTH(your DATETIME Variable) -- gets ... as integer
  • YEAR(your DATETIME Variable) -- ...
share|improve this answer
    
That's easy as long as the day of month > 7, but the days the OP is looking for may be in another month or even another year than the "seed-date" and then things starts to get a bit messy to do in SQL... – MortenSickel Nov 27 '12 at 8:50
    
This is what my colleague suggested, but it doesn't work exactly for the reason where months (or years) change. – kristovaher Nov 27 '12 at 8:52

The easy part: To find any date on the same day and month:

SELECT .... FROM .... WHERE 
   month(timefield)=month('2012-12-02 23:59:59') 
   and day(timefield) = day('2012-12-02 23:59:59)

A messy way of doing it, but it will (mostly) work is to do a

SELECT .... FROM .... WHERE 
   (month(timefield)=month('2012-12-02 23:59:59') 
   and day(timefield) = day('2012-12-02 23:59:59')) or
   (month(timefield)=month(date_sub('2012-12-02 23:59:59' interval 1)) 
   and day(timefield) = day(date_sub('2012-12-02 23:59:59') interval 1)) or
   (month(timefield)=month(date_sub('2012-12-02 23:59:59' interval 2)) 
   and day(timefield) = day(date_sub('2012-12-02 23:59:59') interval 2)) or

and so on...

Then the problem comes up: What with leap years... I do not have any good solutions for that... If e.g your seed date is 05-mar-2012, then you will only get back to 28-feb-2012, but I guess you want the data back to 27 feb 2011... One possible solution to that is to make sure that you always normalize the date to a leap year, fetch the days 8 days back and throws away what you do not want in the front end.

share|improve this answer
    
Does not work for some reason. Something wrong with the syntax, I don't think you can write it this way. – kristovaher Nov 27 '12 at 11:22
    
thinking a bit more about it. - that's a wrong approach... sorry. – MortenSickel Nov 27 '12 at 11:49
    
I have another idea now, a bit messy, but it may work - with a caveat. – MortenSickel Nov 27 '12 at 11:56

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