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Have a table with two columns 'ques' and 'ans'. After comparing through this query I calculate the number of rows fetched by mysql_nuum_rows($result). I am getting error in certain cases like if I am choosing same option (last option in each case i.e. D of radio button) for all questions. The rest is working perfectly.

What am I doing wrong?

//  (Values are coming from html form consisting of 4 sets of 4 radio buttons)
$q1=$_POST['q1'];
$q2=$_POST['q2'];
$q3=$_POST['q3'];
$q4=$_POST['q4'];
$result = mysql_query("SELECT * FROM Test  
               WHERE (ques='q1' AND ans='$q1') 
               OR (ques='q2' AND ans='$q2') 
               OR (ques='q3' AND ans='$q3') 
               OR (ques='q4' AND ans='$q4')");

Expected Output:
You got 3 right answers out of 4 (3 comes from mysql_num_rows() )

Error Coming:
You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'q2' AND ans='4') OR (ques='q3' AND ans='4') OR (ques='q4' AND ans='4')' at line 1

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1  
Is there an "actual" error being produced, or it's just not working the way you want it to? Also, please show some expected output - and also post a sample of code that gets values into $q1-$q4 (maybe the form would help). –  newfurniturey Aug 17 '12 at 22:48
2  
That looks awefully lot like an SQL injection opportunity. –  xmjx Aug 17 '12 at 22:51
    
@newfurniturey Expected Output : You got 3 right answers out of 4 (3 comes from mysql_num_rows() ) Error Coming : You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'q2' AND ans='4') OR (ques='q3' AND ans='4') OR (ques='q4' AND ans='4')' at line 1 Getting of Value : $q1=$_POST['q1']; $q2=$_POST['q2']; $q3=$_POST['q3']; $q4=$_POST['q4']; (Values are coming from html form consisting of 4 sets of 4 radio buttons) –  Ron Aug 17 '12 at 22:52
1  
@Ron Your SQL error means that something coming from the form-input is breaking the query; try checking what the value of q1's last radio button is - if it has a single-quote, you're doomed! Or, you can do $q1 = mysql_real_escape_string($_POST['q1']); and that should prevent the SQL error - not the actual data error though. –  newfurniturey Aug 17 '12 at 23:02
1  
as @newfurniturey said your query is OK but external pollution comes from the values of the variable with q1 as the possible culprit –  codingbiz Aug 17 '12 at 23:06

1 Answer 1

What you are doing wrong:

a) you're not using prepared statements. That means that user-supplied input will end up in your SQL statement, exposing you to unforseen risks (SQL injection). This might also be the cause for the SQL error. You could either assign the SQL statement to a variable and dump it somewhere so you can see what you actually are trying to do. Or (better) you could use prepared statements.

b) the SQL statement looks like you have a problem if your form will be extended to 25 questions plus answers. If not - why are you using an SQL back end for this?

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+1 for talking about sql-injection and the use of prepared statements. -1 for not mentioning the deprecated use of mysql_* functions vs. PDO and MySQLi. +1 for section (b). -1 for not answering the question. Total of zero, too bad. :) –  alfasin Aug 17 '12 at 23:40

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