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Im new in PHP. I need to create a form that display a dropdown list that show the employees names that I have in a mysql table called employee. After have this dropdown list. I need that the select value from the dropdown list be inserted in another table. Here is what I have. I really apreciate your help.

echo '</tr><tr><td><label for="AssignedEmp"> Assigned Employee:</label></td><td>';
$query = "SELECT UserName, Classification_ClassificationID FROM employee";
$result = queryMysql($query);
if (Classification_ClassificationID =='2')  {
   while ($rows = mysqli_fetch_array($result)) {
      <select name = "UserName" value="' . $rows['UserName'] . '" name="toinsert[]" />;
    }
 }
share|improve this question
1  
What, specifically, is your question? Have you tried this code out and something is not working? – RobertB Dec 29 '10 at 15:58

OK, a few things to go over.

1. First things first, if you only want the classification id to be 2, make the database do it:

SELECT UserName, Classification_ClassificationID FROM employee WHERE Classification_ClassificationID = 2

2. Next, I'm not sure you've quite grasped how html <select> works: http://www.w3schools.com/tags/tag_select.asp

You're going to want the output to look something like this:

<select name="UserName">
  <option value="BillyBob">BillyBob</option>
  <option value="JonSmith">JonSmith</option
  <option value="BunnyRabbit">BunnyRabbit</option>
</select>

So the PHP to generate it would be:

echo "<select name=\"UserName\">";

while ($rows = mysql_fetch_array($result)) {
  echo "<option value=\"$rows[UserName]\">$rows[UserName]</option>";
}

echo "</select>";

3. Make sure you echo the html from php, or it's not going to work.

share|improve this answer
if (Classification_ClassificationID =='2')  {
   while ($rows = mysqli_fetch_array($result)) {
      <select name = "UserName" value="' . $rows['UserName'] . '" name="toinsert[]" />;
    }
 }

This is invalid. Need to echo that select line.

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You need to fetch the info before you can do the check.

The

if (Classification_ClassificationID =='2'){

Part will not evaluate b/c it's not set. You'd have to check it like...

if ($row['Classification_ClassificationID'] =='2'){

And do this inside the while statement. I think you want something like this...

NOTE: I added the check for ==2 into your SQL statement

<?php
$query = "SELECT UserName, Classification_ClassificationID FROM employee WHERE Classification_ClassificationID=2";
$result = queryMysql($query);
?>
<select name="UserName">
<?php
while ($rows = mysqli_fetch_array($result)) {
?>
   <option value="<?php echo $rows['UserName']?>" />
<?php
} // close the while
?>
</select>
share|improve this answer

A html select box has this format

<select name="foo">
  <option value="1">1</option>
  <option value="2">2</option>
</select>

so your php should look like this

..
if (Classification_ClassificationID =='2'){
  echo "<select name=\"UserName\">";
  while ($rows = mysqli_fetch_array($result)) {
    echo "<option value=\"". $rows['UserName'] ."\">". $rows['UserName'] ."</option>";
  }
  echo "</select>";
}
share|improve this answer

Try :

echo '</tr><tr><td><label for="AssignedEmp"> Assigned Employee:</label></td><td>';
$query = "SELECT UserName FROM employee where Classification_ClassificationID = '2'"; // First Remark
$result = mysqli_query($query); 
echo '<select name = "UserName">'; // or name="toinsert[]" 
while ($rows = mysqli_fetch_array($result)) {
  echo '<option value="' . $rows['UserName'] . '" />'; // Third remark
}
echo '</select>';

First remark : Make the correct request to begin with. Here you select every userName in the employee table where Classification_ClassificationID = '2' (put only 2 if the field is not a varchar)

Second remark : Be sure you're really using mysqli (or mysql?)

Third remark : Be sure to place an echo before something you want to write as output (here, in html)

Finally : Before learning PHP, you may want to learn HTML first.

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