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Hi I have the following code;

if( ! empty( $post['search-bar'] ) ) {
    $search_data = preg_replace("#\s\s#is", '', preg_replace("#[^\w\d\s+]#is", '', $post['search-bar'] ) );
    $data_array = explode( " ", $search_data );
    $data_array = "'%" . implode( "%' OR '%", $data_array ) . "%'"; 
    $query =  "
SELECT CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) AS 'STRING'
FROM `" . ACCOUNT_TABLE . "` 
WHERE STRING LIKE ( " . $data_array . " ) 
  AND BUSINESS_POST_CODE LIKE '" . substr(P_BUSINESS_POST_CODE, 0, 4) . "%'";

    $q = mysql_query( $query, $CON ) or die( "_error_" . mysql_error() );   
    if( mysql_num_rows( $q ) != 0 ) {
        die();
    }
}

Problem is I want to use the temp col 'STRING' in the where clause but is returning 'unknown coloumn STRING Can any one point me in the right direction, regards Phil

I have printed out the query;

SELECT PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME 
FROM nnn_accounts 
WHERE 
  CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) 
  LIKE ( '%web%' OR '%design%' ) 
AND BUSINESS_POST_CODE LIKE 'NG19%'
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4 Answers

up vote 1 down vote accepted

Wrap STRING in ` instead of '

Should be: ..AS `STRING`

And then anywhere you refer to STRING should be `STRING`

Edit: Here this should solve it:

SELECT CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) AS `STRING`
FROM `" . ACCOUNT_TABLE . "` 
WHERE BUSINESS_POST_CODE LIKE '" . substr(P_BUSINESS_POST_CODE, 0, 4) . "%'"
HAVING `STRING` LIKE ( " . $data_array . " ) ;
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still getting Unknown column 'STRING' in 'where clause' –  Phil Jackson Apr 20 '10 at 5:48
1  
Try using HAVING `STRING` LIKE ( " . $data_array . " ) (Do this after the WHERE clause –  Mitch Dempsey Apr 20 '10 at 5:50
    
thanks for the input. Im going to have to mark yours as correct due to my question, but does the same as Col. Shrapnel instructed. My problem being i am not getting correct results. how come web or design will return results but web design will not?? –  Phil Jackson Apr 20 '10 at 6:22
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The syntax that was more suitable was

SELECT CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) AS `STRING` FROM `tablename` WHERE BUSINESS_POST_CODE LIKE 'NG19%' HAVING `STRING` LIKE '%web%' OR `STRING` LIKE '%design%'
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Yes, it looks like you just can't use the temp col in the where clause just specify it as is:

WHERE CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) LIKE '%$data_array%') 
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I get no errors but getting no results. I have printed out the query; SELECT PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME FROM nnn_accounts WHERE CONCAT( PROFILE_PROFFESION, FIRST_NAME, LAST_NAME, DISPLAY_NAME) LIKE ( '%web%' OR '%design%' ) AND BUSINESS_POST_CODE LIKE 'NG19%' –  Phil Jackson Apr 20 '10 at 6:07
    
if i enter web i get results. if i type in design i get results but web design gets no results. –  Phil Jackson Apr 20 '10 at 6:11
    
your use of LIKE clause is just ridiculous –  Your Common Sense Apr 20 '10 at 6:42
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Remove the quotes around 'STRING'

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