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I have a facebook app that stores users birthday in mysql db as a varchar. Im trying to get all the users birthday that are

coming up in 1 week, if it's during the current week and if the birthday was last week.

in my php i get the birthday and convert them with strtotime()

I can easily check if the birthday is today

if (date('m-d') == date('m-d', $bday)) {
    // today is your bday!!
}

Im lost when it comes to comparing dates aahaha I know I can use strtotime('nextweek') or something like that, but im not sure

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1  
Change the data type from varchar to a proper DATE type. Then date manipulation becomes simple with DATE_ADD(), DATE_SUB(), etc. dev.mysql.com/doc/refman/5.1/en/date-and-time-functions.html –  Michael Berkowski May 18 '12 at 2:22
    
Fb returns the date as a string MM/DD/YYYY if I use strtotime() before sending it to the db, what data type is it in mysql? –  mario May 18 '12 at 2:27

2 Answers 2

up vote 3 down vote accepted

The query would be like :

select * from table 
where bday between curdate() - INTERVAL 7 DAY and curdate() + INTERVAL 7 DAY

for the range within past week and next week.

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Sweet, i got it! I can get the rest from here ;) thanks!! –  mario May 18 '12 at 2:31
    
You're welcome. –  Taha Paksu May 18 '12 at 2:32
1  
For including the last week: BETWEEN CURDATE() - INTERVAL 1 WEEK AND CURDATE() + INTERVAL 1 WEEK –  inhan May 18 '12 at 2:49
    
It will include the next week. Last week is already included. –  Taha Paksu May 18 '12 at 2:51
    
And yes, next week needs to be included. Thanks. –  Taha Paksu May 18 '12 at 2:52

If bday is based on the year of the person's birth, then I don't see how comparing to curdate() will ever give you an answer unless the person was less than 7 days old. =)

EDIT:

You should be able to do:

$bday_this_year = strtotime(date('Y')   . '-' . date('m-d', $bday));
$bday_last_year = strtotime(date('Y')-1 . '-' . date('m-d', $bday));
$bday_next_year = strtotime(date('Y')+1 . '-' . date('m-d', $bday));

$last_week = strtotime("-1 week");
$next_week = strtotime("+1 week");

if (($bday_this_year > $last_week && $bday_this_year < $next_week) || ($bday_last_year > $last_week && $bday_last_year < $next_week) || ($bday_next_year > $last_week && $bday_next_year < $next_week)) {
// Happy Birthday duders!
}

The reason to compute the birthday across different years is to handle the edge cases where it's late December and the user's birthday is in January, or it's early January and the user's birthday is in late December, etc.

This answer could probably be refined, but it should work.

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Is it possible to have it any day last/current/next week? Lets say my bday was on may 11th 2011 (Wednesday) it should still show as your bday, even though it was "more" than a week ago –  mario May 18 '12 at 3:16
    
I suppose for each day of the week, you could compute your definition for last week and next week in days. For example, today is Friday, so "last week" might be 11 days ago and "next week" might be 7 days from now. So, for Friday, your $last_week and $next_week variables would then be strtotime("-11 days") and strotime("+7 days"). –  Robert Locke May 18 '12 at 3:34
    
Thanks, I combined both answers and got exactly what I wanted! :) –  mario May 18 '12 at 13:14

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