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I have a table of users which has a date field for their birthday:

buddy_auto_id    int(11) PK

user_id          varchar(128)

buddy_user_id    varchar(128)

buddy_name       varchar(128)

buddy_bday       date

buddyuser_id     varchar(20)

active           enum('Yes','No')

requestsentby    int(11)

whenrequested    timestamp

I'm trying to find the 3 users whose birthdays fall soonest compared to todays date and then display the number of days until their birthday ordered by soonest first.

Is this possible within a SQL query or do I have to pull it out and let PHP do the equation?

Many thanks

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3  
it should be possible with a query. The challenge is to compare a date with the current date while ignoring the YEAR part. –  Rodin Nov 29 '11 at 8:57
    
Its a good question.. I have updated my answer.. please have a look.. that may help you. –  dku.rajkumar Nov 29 '11 at 9:13

3 Answers 3

up vote 0 down vote accepted

This should be possible with SQL. You need to compare the current date with a birthday expressed as from this year or next year, depending on whether we've past it in the current year. Once you have this "next birthday" date, use DATEDIFF function to determine number of days distant from current date.

SELECT *,
    DATEDIFF(
        # determine date of next birthday by adding age in years to birthday year
        DATE_ADD(buddy_bday, INTERVAL
            YEAR(CURDATE())-YEAR(buddy_bday)
            # add a year if we celebrated birthday already this year
            +(MONTH(buddy_bday)<MONTH(CURDATE()) OR (MONTH(buddy_bday)=MONTH(CURDATE()) AND DAY(buddy_bday) < DAY(CURDATE())))
        YEAR),
        CURDATE())
    AS days_to_next_bday
FROM user_table
ORDER BY days_to_next_bday
LIMIT 3;
share|improve this answer

You should use a DAYOFYEAR function. Try this query -

SELECT buddy_auto_id , buddy_bday FROM table_name
  WHERE DAYOFYEAR(buddy_bday) - DAYOFYEAR(NOW()) > 0
  ORDER BY DAYOFYEAR(buddy_bday) - DAYOFYEAR(NOW())
  LIMIT 3;

So, this query works only for current year.


EDITED query 2:

This one works for all dates.

CREATE TABLE birtdays(
  buddy_auto_id INT(11) NOT NULL AUTO_INCREMENT,
  buddy_bday DATE DEFAULT NULL,
  PRIMARY KEY (buddy_auto_id)
);

INSERT INTO birtdays VALUES 
  (1, '2011-10-04'),
  (2, '2011-03-01'),
  (3, '2011-11-29'),
  (4, '2011-11-10'),
  (5, '2011-12-29'),
  (6, '2011-11-30'),
  (7, '2011-12-08'),
  (8, '2011-09-17'),
  (9, '2011-12-01'),
  (10, '2011-12-11');

SELECT buddy_auto_id, buddy_bday
  FROM
    birtdays, (SELECT @day_of_year:=DAYOFYEAR(NOW())) t
  ORDER BY
    DAYOFYEAR(buddy_bday + INTERVAL YEAR(NOW()) - YEAR(buddy_bday) YEAR) - @day_of_year
      + IF (DAYOFYEAR(buddy_bday + INTERVAL YEAR(NOW()) - YEAR(buddy_bday) YEAR) - @day_of_year > 0, 0, DAYOFYEAR(STR_TO_DATE(CONCAT(YEAR(NOW()), '-12-31'), '%Y-%m-%d')))
  LIMIT 3;

+---------------+------------+
| buddy_auto_id | buddy_bday |
+---------------+------------+
|             6 | 2011-11-30 |
|             7 | 2011-12-08 |
|            10 | 2012-02-11 |
+---------------+------------+
share|improve this answer
    
What about leap years? That may give off-by-one errors. You really do need to compare month and day manually. –  Francis Avila Nov 29 '11 at 9:47
    
@Francis Avila Yes, you are right. I should rewrite the query. Thanks;-) –  Devart Nov 29 '11 at 9:51
    
The new query is added. –  Devart Nov 29 '11 at 10:39
    
I don't think this new query addresses the problem either. The problem is this: DAYOFYEAR('1984-04-01') <> DAYOFYEAR('1985-04-01') In other words, you can't use DAYOFYEAR to compare dates in different years reliably, because you may get different results for the same date in different years. –  Francis Avila Nov 29 '11 at 10:46
    
I have modified the query. –  Devart Nov 29 '11 at 11:15

We first need to calculate the next birthday, then order by that value:

select *,
    buddy_bday + interval 
        if(
              month(buddy_bday) < month(now()) or 
              (month(buddy_bday) = month(now()) and day(buddy_bday) < day(now())),

              year(now())+1,
              year(now())
        ) - year(buddy_bday) year as next_bday
from buddies order by next_bday - date(now());

The long if statement figures out whether the buddy already had his/her birthday this year.

share|improve this answer
    
And for the number of days until next birthday use a param for the long expression ( @next_bday := long_expression ) , and DATEDIFF(@next_bday, now()) –  Inca Nov 29 '11 at 9:43

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