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How can I use the if statement in MYSQL query to return yes if it's true and no if it's not?

See the example :

IF(table_name.field_name_value = 1, 'yes','no') AS active

I'm trying something like this but with no success

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What do you mean by " with no success "? You wanted to say that " this is not working "? –  Tadeck Nov 13 '11 at 13:33
    
Tell us how it works and what is the expected result, if you want your problem to be solved for you, please. –  Tadeck Nov 13 '11 at 13:45
    
@Tadeck, when i print active it doesn't show anything –  revo Nov 13 '11 at 13:49
    
How do you print it? –  Tadeck Nov 13 '11 at 13:51
    
@Tadeck,print_r($array['active']); –  revo Nov 13 '11 at 13:53

4 Answers 4

You can use case function:

select case
   when table_name.field_name_value = 1 then 'yes'
   else 'no'
   end case as active
  from table_name

Although if function should also work. Can you post your full query?

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You can use CASE in mysql query for that. Like

CASE WHEN table_name.field_name_valud = 1 THEN 'Yes' ELSE 'No' END As active
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See http://dev.mysql.com/doc/refman/5.0/en/control-flow-functions.html

SELECT CASE  WHEN table_name.field_name_value = 1 THEN 'yes'
   ELSE 'no' END;
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From the documentation on IF() function:

mysql> SELECT IF(1<2,'yes','no');
        -> 'yes'

So, basically, the syntax is as mentioned above.

EDIT:

You are saying my example is incorrect. Thus, I provide you a proof (which proves the example from the documentation I mentioned above):

I have a table, which has uid column, containing ID of the user. The table is part of the database on some site (which is not relevant). When I make the following query:

SELECT `uid`, IF(`uid`=3, 'yes', 'no') AS `active` FROM `mysite_users`;

I receive the following result:

+-----+--------+
| uid | active |
+-----+--------+
|   0 | no     |
|   1 | no     |
|   3 | yes    |
|   8 | no     |
|   9 | no     |
|  10 | no     |
|  11 | no     |
|  12 | no     |
|  13 | no     |
|  14 | no     |
|  15 | no     |
+-----+--------+
11 rows in set (0,00 sec)

Which is exactly what I would expect (and what should be expected after reading the documentation). Is it still not working for you?

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i'm trying to compare a field value with a static number, as i said above. my example is not correct so yours either! –  revo Nov 13 '11 at 13:38
    
@Revo: It is not my example, it is an example from the documentation (see page linked within my answer), so how could it be incorrect? Have you even checked it? –  Tadeck Nov 13 '11 at 13:43
    
the problem is using AS ! –  revo Nov 13 '11 at 13:45
    
@Revo: See the updated answer. This is certainly working - I have tested it twice and it works exactly at the documentation says. –  Tadeck Nov 13 '11 at 13:55

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