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i am trying to check if a record with given id is present in the table or not. if it is true i have to execute certain statements if not i have to display an error. so i thought of using mysql_query() statement like this:

mysql_query("select 'true' from people_info where id=1");

id=1 is present in the table.

instead of giving me "true" the above statement outputs Resource id#10.

when i give id=100 which is not in table

mysql_query("select 'true' from people_info where id=100");

it gives me Resource id#12

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mysql_query returns a resource ID (as per the docs!). You then need to call mysql_fetch_row/mysql_fetch_array to retrieve the row data. –  carpii Oct 17 '11 at 19:19

2 Answers 2

use this code:

list($value) = @mysql_fetch_row(mysql_query("select 'true' from people_info where id=100"));

Only INSERT, UPDATE, DELETE, DROP, etc, mysql_query() returns TRUE on success.

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We are missing some line of your code about how you output the value but this should work :

$result = mysql_query("select 'true' from people_info where id=1"); //This return a string
$value = mysql_result($result,0);
echo("My value is : " . $value);

Use mysql_result. Here is the PHP Doc. This function return the contents of one cell from a MySQL result set in a String format. Of course, for comparison you can cast or simply compare the value of the cell as a string to another string. Beware that this function can return false if nothing is returned.

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i need to check it an if condition. if the if(true) condition is true i execute a certain set of statements –  indr Oct 17 '11 at 18:55
    
This method return a string, just compare it : if('true' == $value). Anyways, it's ain't the main question isn't? –  Patrick Desjardins Oct 17 '11 at 19:08
    
this code is a nonsense and will never work. –  Your Common Sense Oct 21 '11 at 13:48
    
I did the correction. Thank you for signaling the error. –  Patrick Desjardins Oct 21 '11 at 13:53

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