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i think its pretty easy but i couldn't find the answer with searching

i want to do something like this

 $q = "select `id` , 0 as choice from tbl1";
 $q = "select , tbl2.choice as choice from tbl1 join tbl2 ON .... ";

i want to select 0 as the choice if user is not logged so i wouldn't need to do the extra join but i get

Unknown column '0' in 'field list'
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select id , 0 as choice from tbl1 looks like a valid query to me. Are you sure that this produces the error? – ypercube Aug 7 '12 at 12:12
A small change your query needs @max.I have posted the answer. – JDeveloper Aug 7 '12 at 12:16
@ypercube yes it needed the single quotations – max Aug 7 '12 at 12:21
That's a PHP problem you have. MySQL returns 0 as an integer. If your PHP code expects a string, then this is a solution. – ypercube Aug 7 '12 at 12:24

4 Answers 4

up vote 0 down vote accepted

Try this Query :-

SELECT id,'0' AS Choices FROM tbl1 ;
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The only way that the error (you show) is produced, is if you have this in your query:

select id , `0` as choice from test ;
         ---^ ^------
         ------------ notice the backticks there

Make it:

select id , 0 as choice from test ;

and the query is valid and MySQL will throw no error.

If you want a string returned in PHP (as if choice column in a CHAR() or VARCHAR() column) and you want consistent results from the 2 variations of the query, then use single quotes:

select id , '0' as choice from test ;
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I'm not sure if this is what you're looking for, but give this a try :

SELECT id AS choice FROM tbl1 WHERE id=0
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If you already know what value you want (0) why do you want to make SQL return it? Just use 0 instead of parsing the value from the query.

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i send the result directly to the template and i dont want to change the template – max Aug 7 '12 at 12:13

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