Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Whenever I visit the page I get: 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 '' at line 1

It has to do with the second while loop

<html>
<body>
<?php
mysql_connect("mysql.1freehosting.com", "u533288591_sdc", "mypass") or die(mysql_error());
mysql_select_db("u533288591_sdc");
$name = $_POST['name'];
$probably_needed = "questions";
$grade = $_POST['class'] ;
$answers ="answers" ;
$query = mysql_query("SELECT * FROM $probably_needed ") or die(mysql_error()); 
$otherquery = mysql_query("select * from $ANSWERS ") or die (mysql_error()) ;

while($row = mysql_fetch_array($query)){
echo "<a href=\"answer.php?name=" . $name .  "&subject=" . $row['Subject'] .  "&grade=" . $grade . "\">" . $row['Subject'] ."</a>" ;
    while($answerrow = mysql_fetch_array($otherquery)){
        if ($answerrow['name'] == $name){
            if ($answerrow['subject'] == $row['Subject']){
                echo "success" ;
                }
          }
      }

}
?>

</body>
</html>
share|improve this question
1  
You have an XSS vulnerability. –  SLaks Sep 30 '12 at 15:45
add comment

4 Answers

wrap your variables with backtick. lowercase your variable $ANSWERS

SELECT * FROM `$probably_needed` 
select * from `$answers`

PHP is case sensitive.

share|improve this answer
1  
this is not the answer to the problem! –  JvdBerg Sep 30 '12 at 15:48
add comment

A. In php $answers is not $ANSWERS

Form PHP Doc

Variables in PHP are represented by a dollar sign followed by the name of the variable. The variable name is case-sensitive.

Try

$answers ="answers" ;
mysqli_query($link,sprintf("Select * from %s",$answers));


B. From PHP Doc on mysql_query

Suggested alternative Use of this extension is discouraged. Instead, the MySQLi or PDO_MySQL extension should be used. See also MySQL: choosing an API guide and related FAQ for more information. Alternatives to this function include:

You should upgrade to mysqli or PDO


C. Due to XSS Injection flaw in your code you should use filter_var

What i think your code should look like

$mysqli = new mysqli("mysql.1freehosting.com", "u533288591_sdc", "mypass", "u533288591_sdc");

$name = filter_var($_POST['name'], FILTER_SANITIZE_STRING);
$grade = filter_var($_POST['class'],FILTER_SANITIZE_STRING);

$tableQuestion = "questions"; // not sure where this would come from
$tableAnswer = "answers";

$resultQuestion = $mysqli->query(sprintf("SELECT * FROM  `%s`", $tableQuestion));
$resultAnswer = $mysqli->query(sprintf("SELECT * FROM  `%s`", $tableAnswer));

$template = "<a href=\"answer.php?name=%s&subject=%s&grade=%s\">%s</a>";

while ( $rowQuestion = $resultQuestion->fetch_assoc() ) {
    printf($resultAnswer, $name, $rowQuestion['Subject'], $grade, $rowQuestion['Subject']);
    while ( $rowAnswer = $resultAnswer->fetch_assoc() ) {
        if ($rowAnswer['name'] == $name && $rowAnswer['subject'] == $rowQuestion['Subject']) {
            echo "success";
        }

    }
}
share|improve this answer
    
nope... Warning: mysqli_query() expects at least 2 parameters, 1 given in /home/u533288591/public_html/display.php on line 12 Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in /home/u533288591/public_html/display.php on line 16 Hello Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in /home/u533288591/public_html/display.php on line 16 –  user1709980 Sep 30 '12 at 15:53
    
$link should be something like $link = mysqli_connect("localhost", "my_user", "my_password", "world"); –  Baba Sep 30 '12 at 15:54
1  
+1 for all the explanation :) –  JvdBerg Sep 30 '12 at 15:55
add comment

Variable names in PHP are case sensitive.

You define: $answers ="answers" ;

but use "select * from $ANSWERS "

$answers is not $ANSWERS

share|improve this answer
    
+1 for reading my mind i used $answers is not $ANSWERS you also used $answers is not $ANSWERS –  Baba Sep 30 '12 at 16:12
add comment

May be I mistake, but you should do so:

$queryText1 = "SELECT * FROM " + $probably_needed;
$queryText1 = "SELECT * FROM " + $ANSWERS;
$query = mysql_query($queryText1) or die(mysql_error()); 
$otherquery = mysql_query($queryText1) or die (mysql_error()) ;

Other words, you should concatenate string and variable.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.