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I want to use my custom PHP function CalculateAge which takes 3 parameters (day, month and year) inside a SQL UPDATE. However, I need to pass the SQL variables to the function, and I don't know how to do it. Here's what it looks like (note that bday, bmonth and byear are "users" table columns).

mysql_query("UPDATE users SET age=".CalculateAge(bday,bmonth,byear)."");
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You can not do it. PHP sends request to MySQL server as a string, and this string 'knows' nothing about your PHP functions. It only consists of the 'text' that you will put in it. Tell us what that function is doing - it may be possible to do the same things by SQL requests. –  Cheery Jan 30 '12 at 6:21
    
Another way - implement stored function inside database. Look at Stored routines –  dmitry Jan 30 '12 at 9:54

3 Answers 3

up vote 1 down vote accepted

You can't pass the mysql values into the function like that. You would have to do a SELECT to get the values, fetch the row, pass them into the function, and then INSERT that value.

I would suggest that instead of updating the age, you should store the person's birthday since it never changes. When you want to show their age, just do the math.

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Ok thanks I'll do it the long way then –  Adam Strudwick Jan 30 '12 at 6:23

You can't interweave PHP functions in a query. You'd need to first query for the data in each row; calculate the result values for each row, and then run queries to update each row based on the results.

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first retrieve data from database:

$data = mysql_query("SELECT bday,bmonth,byear FROM users");
$info = mysql_fetch_array( $data );   

now call your php function $age=CalculateAge($info['bday'],$info['bmonth'],$info['byear']);
and then update table... .

mysql_query("UPDATE users SET age=".$age."");
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