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I have the following query, I need to implement a Mailer that needs to be send out to all clients who's Birthday is today, this happens on a daily manner, now what I need to achieve is only to select the Birthday clients using a Postgres SQL query instead of filtering them in PHP.

The date format stored in the database is YYYY-MM-DD eg. 1984-03-13

What I have is the following query

SELECT cd.firstname,
       cd.surname, 
       SUBSTRING(cd.birthdate,6),
       cd.email 
FROM client_contacts AS cd 
   JOIN clients AS c ON c.id = cd.client_id 
WHERE SUBSTRING(birthdate,6) = '07-20';

Are there better ways to do this query than the one I did above?

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4 Answers 4

up vote 3 down vote accepted

You could set your where clause to:

Where date_part(day, birthdate) = date_part(day, CURRENT_DATE) And date_part(MONTH, birthdate) = date_part(MONTH, CURRENT_DATE)
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what about people that are borned last year? –  Tudor Constantin Jul 20 '11 at 8:08
1  
Apparently i need to go to bed instead of answering questions on SO. I'll edit. –  Jordan Jul 20 '11 at 8:09
2  
changed my downvote to an upvote now :D –  Tudor Constantin Jul 20 '11 at 8:13
3  
That should be date_part() not datepart() and CURRENT_DATE not CURRENT_DATE() –  a_horse_with_no_name Jul 20 '11 at 8:31
1  
Hehe. I still think that my approach is better for people/contracts dated Feb 29th, though. ;-) –  Denis Jul 20 '11 at 14:33
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In case it matters, the age function will let you work around the issue of leap years:

where age(cd.birthdate) - (extract(year from age(cd.birthdate)) || ' years')::interval = '0'::interval

It case you want performance, you can actually wrap the above with an arbitrary starting point (e.g. 'epoch'::date) into a function, too, and use an index on it:

create or replace function day_of_birth(date)
  returns interval
as $$
  select age($1, 'epoch'::date)
         - (extract(year from age($1, 'epoch'::date)) || ' years')::interval;
$$ language sql immutable strict;

create index on client_contacts(day_of_birth(birthdate));

...

where day_of_birth(cd.birthdate) = day_of_birth(current_date);

(Note that it's not technically immutable, since dates depend on the timezone. But the immutable part is needed to create the index, and it's safe if you're not changing the time zone all over the place.)


EDIT: I've just tested the above a bit, and the index suggestion actually doesn't work for feb-29th. Feb-29th yields a day_of_birth of 1 mon 28 days which, while correct, needs to be added to Jan-1st in order to yield a valid birthdate for the current year.

create or replace function birthdate(date)
  returns date
as $$
  select (date_trunc('year', now()::date)
         + age($1, 'epoch'::date)
         - (extract(year from age($1, 'epoch'::date)) || ' years')::interval
         )::date;
$$ language sql stable strict;

with dates as (
  select d
  from unnest('{
    2004-02-28,2004-02-29,2004-03-01,
    2005-02-28,2005-03-01
  }'::date[]) d
)
select d,
       day_of_birth(d),
       birthdate(d)
from dates;

     d      | day_of_birth  | birthdate  
------------+---------------+------------
 2004-02-28 | 1 mon 27 days | 2011-02-28
 2004-02-29 | 1 mon 28 days | 2011-03-01
 2004-03-01 | 2 mons        | 2011-03-01
 2005-02-28 | 1 mon 27 days | 2011-02-28
 2005-03-01 | 2 mons        | 2011-03-01
(5 rows)

And thus:

where birthdate(cd.birthdate) = current_date
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WHERE date_part('month', cd.birthdate) = '07' AND date_part('day', cd.birthdate) = '20'

you can read more about this here

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Thx, but this error comes up HINT: No function matches the given name and argument types. You may need to add explicit type casts. –  Roland Jul 20 '11 at 8:21
2  
datepart() is not a Postgres function, it should be date_part() –  a_horse_with_no_name Jul 20 '11 at 8:28
    
Yes I missed the underscore. But you shoud use @Jordan solution it's the best. –  Lachezar Todorov Jul 21 '11 at 11:38
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Try with something like:

WHERE EXTRACT(DOY FROM TIMESTAMP cd.birthdate) = EXTRACT(DOY FROM TIMESTAMP CURRENT_TIMESTAMP)
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That's no good for leap years. –  Denis Jul 20 '11 at 8:15
    
I thought about that too - Jordan's answer is the good one then :) –  Tudor Constantin Jul 20 '11 at 8:17
    
No, it isn't... He's extracting the year instead of the day, and that still won't solve the leap year. I'd use age(), personally (see my answer). –  Denis Jul 20 '11 at 8:23
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