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Calculate Age in MySQL (InnoDb)

I have created a table and one of its columns is 'dob' (date of birth). It entered the birth date in the table in 0000-00-00 format. But I need to display my users ($id) with their age instead of the 0000-00-00 format.

My current page is displaying the info from my database in this format. It will display the age of different users.

<td align="center"><? echo $rows['age']; ?></td>

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marked as duplicate by Corbin, casperOne Apr 12 '12 at 19:45

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What have you tried so far? –  Daniel Ribeiro Apr 11 '12 at 19:24
    
What units? Years? Days? Months? Age alone is like speed or weight. Units need to accompany it. –  Corbin Apr 11 '12 at 19:24
    
Also, you don't specify if the last 00-00 of your date string is mm-dd or dd-mm. –  msanford Apr 11 '12 at 19:29
    
@msanford with MySQL it's safe to assume yyyy-mm-dd. But, 0000-00-0000 is indeed vague. He should have specified the type of the field instead unless it's varchar in which the format of the date would need to be explicity stated. –  Corbin Apr 11 '12 at 19:32

1 Answer 1

Here is a SQL query you can use.

SELECT EXTRACT(YEAR FROM (FROM_DAYS(DATEDIFF(NOW(), '1982-01-01')))) AS age
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And now having seen the comments above, a caveat: That's assuming the data type of the column dob is date or datetime. –  mdoyle Apr 11 '12 at 19:36
    
I placed: SELECT EXTRACT(YEAR FROM users(FROM_DAYS(DATEDIFF(NOW(), '1982-01-01')))) AS age but didn't work –  drftorres Apr 11 '12 at 23:51
    
Could you elaborate on "but didn't work"? You are using MySQL, right? root@beren [~]# mysql Welcome to the MySQL monitor. Commands end with ; or \g. Your MySQL connection id is 13408 Server version: 5.0.95-community MySQL Community Edition (GPL) `` mysql> SELECT EXTRACT(YEAR FROM (FROM_DAYS(DATEDIFF(NOW(), '1982-01-01')))) AS age; +------+ | age | +------+ | 30 | +------+ 1 row in set (0.00 sec) `` mysql> Hoping the comment formatting works...and it doesn't seem to be. –  mdoyle Apr 12 '12 at 16:06

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