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Can someone help me figure out what is wrong with this function?? I am getting a mysql syntax error...

function category_exists($name) {
    $name = mysql_real_escape_string($name);

    $query = mysql_query("SELECT COUNT(1) FROM 'categories' WHERE 'name' = '{$name}'"); 
    return (mysql_result($query, 0) == '0')? false : true;
}
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2  
Well what is the error? The fact that it says 'mysql syntax error' suggests an error with the... MySql syntax? –  mdm Jun 14 '11 at 8:19

4 Answers 4

Try changing the query to

"SELECT COUNT(*) FROM 'categories' WHERE name = '$name'"
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function category_exists($name) {
  $name = mysql_real_escape_string($name);

  $query = mysql_query("SELECT COUNT(1) FROM `categories` WHERE `name` = '{$name}'"); 
  return (mysql_result($query, 0) == '0')? false : true;
}

You need either backquotes (`) or NO quotes around table names and field names.

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Strings are quoted. Object names (tables, columns...) are not.

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You should not have quotes around your table and column name (categories, name). If you need to escape a table or column names, you should use backquotes (`). IE:

$query = mysql_query("SELECT COUNT(1) FROM `categories` WHERE `name` = '{$name}'"); 
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same for the table name 'categories' => `categories` –  SirDarius Jun 14 '11 at 8:22

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