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I've try a lot of ways to get this table print as good as it should but i failed i know it's simple thing so i hope u help me with it
here's my code

<?php
    include('../connect.php');
    $id=$_SESSION['login_user'];
    $sql = "Select CourseName , Studentname from course p natural join student t"; 
    $rs_result = mysql_query ($sql, $connection); 

    echo "<center>";
    echo "<table>";
    echo "<tr> <th>Course Name</th> <th> Students Name</th>  </tr>";

    // loop through results of database query, displaying them in the table
    while($row = mysql_fetch_array( $rs_result )) {
        // echo out the contents of each row into a table
        echo "<tr>";
        echo '<td>' . $row['CourseName'] . '</td>';
        echo "<td rowspan=''> $row[Studentname] </td> ";
        echo "</tr>";
    }

    echo "</table>"; 
    echo "</center>";

?>

I want to be something like this

Course   |  Name   |   Student name  |
Math101  |  john, Mike               |
...

Also, is the JOIN query between the two tables CORRECT or not ???

The two tables are: Course ( Course name - Course id ) Student ( Student name - Course id )

share|improve this question
1  
Can You please tell me what the exact output you need –  user1423506 Nov 7 '12 at 12:52
    
What does the "Name" column refer to? The "Student" table you described doesn't contain such field. As well as the "Course" table. –  Exander Nov 7 '12 at 13:01
    
Name = Course name ! .. the output shown course name and student name ( all student names in one row that are taken this course ) –  user1806136 Nov 7 '12 at 19:19

5 Answers 5

up vote 2 down vote accepted

Try this query

$sql ="SELECT cor.CourseName,GROUP_CONCAT(stu.StudentName) AS StudentName
        FROM course AS cor
        LEFT JOIN student AS stu
           ON stu.CourseId = cor.CourseId";

And change the the line in below

echo "<td rowspan=''>" . $row['Studentname'] . "</td> ";
share|improve this answer
    
the rowspan works perfectly! BUT it prints out all student in one row even though the one with different Course id! –  user1806136 Nov 7 '12 at 19:37

This line:

 echo "<td rowspan=''> $row[Studentname] </td> ";

You are accessing the array element improperly. Studentname should have single quotes around it like such:

 echo "<td rowspan=''>" . $row['Studentname'] . "</td> ";

Also, in your query, this may work better:

$sql = "SELECT c.CourseName, s.StudentName
        FROM course AS c
        INNER JOIN student AS s
           ON s.CourseId = c.CourseId";
share|improve this answer

Please use below format

SELECT CourseName , Studentname 
    FROM course
    INNER JOIN student
    ON course.id = student.id

Thanks

share|improve this answer

The problem is with Your rowspan attribute - You need to provide it with the exact number of rows to span through. Anyway, I think it is the collspan attribute You want to use, so e.g.

echo "<td collspan='2'> {$row['Studentname']} </td> ";

which means it will span through 2 columns, thus stundet's name will be both under the Name and Student name columns.

Is this what You were expecting?

Also I highly recommend not to use mysql_ functions but learn how to use mysqli or at least PDO.

share|improve this answer
    
it prints out only one row with the first course name in the database and all student name in the database at the same row!! even the ones with different Course id! –  user1806136 Nov 7 '12 at 19:56

I'm under the impression that you wanted to display a comma-separated list of names of all the students that attend each course, for each separate CourseName. In this case, you could change your SQL query to something like this:

SELECT CourseName, GROUP_CONCAT(Studentname SEPARATOR ', ') as names
FROM Course p NATURAL JOIN Student t
GROUP BY CourseName;
share|improve this answer
    
yes that's what i meant , i had changed the code to what u give me but it's still gives me an error says : mysql_fetch_array() expects parameter 1 to be resource, boolean given –  user1806136 Nov 7 '12 at 16:10
    
This means that there was an error with the query. Could you just post your CREATE TABLE queries for these 2 tables? My assumptions about your database structure were probably incorrect in some way –  Exander Nov 7 '12 at 16:56
    
It would be great if you could at least post the string returned by mysql_error() after the query. –  Exander Nov 7 '12 at 17:05
    
CREATE TABLE Course (CID number(8) , Course_name var(30), CONSTRAINT PK PRIMARY KEY (CID) ) –  user1806136 Nov 7 '12 at 19:28
    
CREATE TABLE Student (SID number(8) , Student_name var(30), CID number(8), CONSTRAINT PK PRIMARY KEY (SID) ) –  user1806136 Nov 7 '12 at 19:30

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