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Look at code below:

<?php
    $output += "
    <table border='1'>
          <tr>
          <th>Session ID</th>
          <th>TeacherUsername</th>
          <th>Teacher Name</th>
          <th>Module Number</th>
          <th>Module Name</th>
          <th>Course ID</th>
          <th>Course Name</th>
          <th>Year</th>
          <th>Student Username</th>
          <th>Student Name</th>
          <th>Mark</th>
          <th>Grade</th>
          </tr>
    ";
           $total = 0;
            $count = 0;
            while ($row = mysql_fetch_array($result)) {
            $count++;
              $total += $row['Mark'];
              $output += "
          <tr>
          <td>{$row['SessionId']}</td>
          <td>{$row['TeacherUsername']}</td>
          <td>{$row['TeacherForename']} {$row['TeacherSurname']}</td>
          <td>{$row['ModuleId']}</td>
          <td>{$row['ModuleName']}</td>
          <td>{$row['CourseId']}</td>
          <td>{$row['CourseName']}</td>
          <td>{$row['Year']}</td>
          <td>{$row['StudentUsername']}</td>
          <td>{$row['StudentForename']} {$row['StudentSurname']}</td>
          <td>{$row['Mark']}</td>
          <td>{$row['Grade']}</td>
          </tr>";
            }


              $output += "        </table>";

        $average = (int)($total/$count);
        echo "<p>Average Mark: $average</p>";
    echo $output;
      ?>

For some strange reason it does not echo $output (which is at bottom of the code) properly. It is suppose to output the table but instead it echos 0, why does it output 0?

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4 Answers 4

up vote -5 down vote accepted

Don't use javascript's, plus but use php's dot

$output .=

But you have to also define $output first before using .=.

so in result:

<?php
    $output = "";
    $output .= "
    <table border='1'>
          <tr>
          <th>Session ID</th>
          <th>TeacherUsername</th>
          <th>Teacher Name</th>
          <th>Module Number</th>
          <th>Module Name</th>
          <th>Course ID</th>
          <th>Course Name</th>
          <th>Year</th>
          <th>Student Username</th>
          <th>Student Name</th>
          <th>Mark</th>
          <th>Grade</th>
          </tr>
    ";
           $total = 0;
            $count = 0;
            while ($row = mysql_fetch_array($result)) {
            $count++;
              $total .= $row['Mark'];
              $output .= "
          <tr>
          <td>{$row['SessionId']}</td>
          <td>{$row['TeacherUsername']}</td>
          <td>{$row['TeacherForename']} {$row['TeacherSurname']}</td>
          <td>{$row['ModuleId']}</td>
          <td>{$row['ModuleName']}</td>
          <td>{$row['CourseId']}</td>
          <td>{$row['CourseName']}</td>
          <td>{$row['Year']}</td>
          <td>{$row['StudentUsername']}</td>
          <td>{$row['StudentForename']} {$row['StudentSurname']}</td>
          <td>{$row['Mark']}</td>
          <td>{$row['Grade']}</td>
          </tr>";
            }


              $output .= "        </table>";

        $average = (int)($total/$count);
        echo "<p>Average Mark: $average</p>";
    echo $output;
      ?>
share|improve this answer
    
that worked, thank you :) –  BruceyBandit Oct 31 '11 at 21:25
10  
Your answer was the same as everybody else's. Fishing for check marks makes you look silly. –  AlienWebguy Oct 31 '11 at 21:43
    
It worked but for some strange reason it says: Notice: Undefined variable: output in /web/stud/u0867587/Mobile_app/exam_grade_report.php on line 151. This is the line where it has "; at the end of the output variable. Why is it saying this? –  BruceyBandit Oct 31 '11 at 21:45
    
@AlienWebguy: I had the only answer with OP's comment. I have deleted the comment I posted –  genesis Oct 31 '11 at 21:46
2  
I don't really care. It's not that important. –  AlienWebguy Oct 31 '11 at 21:53

You're concatenating JavaScript style. You want:

$output = '';
$output .= 'foobar';
share|improve this answer
    
It worked but for some strange reason it says: Notice: Undefined variable: output in /web/stud/u0867587/Mobile_app/exam_grade_report.php on line 151. This is the line where it has "; at the end of the output variable. Why is it saying this? –  BruceyBandit Oct 31 '11 at 21:45
    
Cuz you're trying to concatenate a variable that hasn't been set yet. Either change the first one to $output = 'foobar'; or else above all your code, set $output = ''; –  AlienWebguy Oct 31 '11 at 21:47

$output += " ..." is doing ADDITION, not concatentation. You're adding a string to a number, so PHP casts the string to a number as best it can, which probably comes out as 0.

Try

$output .= "...";

instead. Or better, yet, use a HEREDOC:

$output .= <<<EOL
...
EOL;
share|improve this answer

Using += will try to add 'value' of the string and not concatenate it in PHP.

Use .= instead.

share|improve this answer
    
It worked but for some strange reason it says: Notice: Undefined variable: output in /web/stud/u0867587/Mobile_app/exam_grade_report.php on line 151. This is the line where it has "; at the end of the output variable. Why is it saying this? –  BruceyBandit Oct 31 '11 at 21:45

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