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I have a Query that looks something like this (I know its vulnerable to sql injection, its just a template):

$db = mysql_connect("host","un", "pw"); 
mysql_select_db("db", $db); 

$sql = "SELECT *" 
    . " FROM Student" ;
$result = mysql_query($sql); 
$students = mysql_fetch_assoc($result);
$numRows = mysql_num_rows($result);

Then I have this form:

<form name="form" id="form" method="post" action="page">
<select name="student" id="student">

<? 
for ($i=0;$i<=$numRows;$i++){
    echo "<option>" . $students['StudentID'] . "</option>";

}

?>


  <option selected="selected">Please select a student</option>
   </select>

This should print something like a drop down box with all the values from the table as items. However, I get a drop down box with 6 of the same items, in this case, I get 6 student Id's, but they are all the same ID. I have six students in the db, and I would like to display each of them as an option. What am I doing wrong?

TIA

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1 Answer 1

up vote 4 down vote accepted

Have a look at the examples of mysql_fetch_assoc. It will only return one record. In order to get all of them, you have to use it in a loop, e.g.:

$students = array();

while(($student = mysql_fetch_assoc($result))) {
    $students[] = student;
}

and later:

<?php foreach($students as $student): ?>
    <option><?php echo $student['StudentID']; ?></option>
<?php endforeach; ?>

or with a for loop (but it is not necessary if you don't need a counter):

<?php for($i = 0; $i < numRows; $i++): ?>
    <option><?php echo $students[$i]['StudentID']; ?></option>
<?php endfor; ?>

(Note: I use the alternative syntax for control structures which imho is much more readable when mixing HTML and PHP)

share|improve this answer
    
worked like a charm! Thanks a lot! –  Ryan Dec 10 '10 at 23:41

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