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I have a dynamic page that gets a certain number of results for rooms from Mysql and echos them out in a form as a checkbox. Since I do not have a certain number in each result I am not sure how many checkboxes to check. Anyway here is what a sample code from the form looks like:

$rr = 1;
while($ro = mysql_fetch_array($getRooms)){
    $roomName = $ro['HotelRoom'];
    ?>
    <input type="checkbox" name="room<?php echo $rr ?>" value="<?php echo $roomName ?>" /><?php echo $roomName ?>
    <?php
    $rr++;
    }

Now when I submit the form, I tried to use a function to get the results but I get nothing back. Here is my function to receive the data:

//Get all rooms
    $nn = 1;
    $retn = '';
    function roomGroup(){
    foreach ($_POST['room'.$nn] as $key => $value) {
        $retn .= $value.",";
        }
    $nn++;
    return $retn;
    }
$rooms = roomGroup();

I get nothing from the $rooms variable. I also tried this as a function:

    $nn = 1;
    $retn = '';
    function roomGroup(){
    while(isset($_POST['room'.$nn]))
    {
    $roomsn = $_POST['room'.$nn];
    $retn .= $roomsn.",";
    $nn++;
    }
    return $retn;
    }

Any help on what I am doing wrong would be GREATLY appreciated!!!

share|improve this question
1  
Please, don't use mysql_* functions for new code. They are no longer maintained and the community has begun the deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide, this article will help to choose. If you care to learn, here is good PDO tutorial. – Madara Uchiha Jun 29 '12 at 19:16
up vote 3 down vote accepted

You could loop on $_POST array :

$rooms = "";
$first = true;

foreach($_POST as $key => $value) {
    if(strlen($key) >= 4 && substr($key,0,4) == "room") {
        if($first) {
            $rooms .= $value;
            $first = false;
        }
        else 
            $rooms .= ",".$value;
    }
}
share|improve this answer
    
thank you, thank you, thank you! – lov2code Jun 29 '12 at 19:30
    
You're welcome * 3 ! :) – N. Hodin Jun 29 '12 at 19:30

You are doing this the hard way. =)

You can use the HTML to make an array for you by adding brackets to the end of the input element name.

while($ro = mysql_fetch_array($getRooms)){    
    $roomName = $ro['HotelRoom'];     
    echo '<input type="checkbox" name="room[]" value="'.$roomName.'" />'.$roomName.'<br />';    
} 

Now, on your logic side, you access the array. The rooms checkbox will be passed as an array within the POST variable. You need to check to make sure that you passed at least some rooms. If you passed rooms, just do:

implode( ", ", $_POST['rooms'] );

Also if it would be more convenient for you, you could also make the name="room[]" into name="room['.$ro['HotelRoom'].']" if all your HotelRoom's are unique. Then you could set the value to be the id of the Hotel Room. Then, instead of doing implode on the logic side, you could do a foreach loop like you were doing to still have the key value pairs.

foreach( $_POST['room'] as $hotelRoom => $roomId ){

share|improve this answer

You seem to be having issues with variables' scopes. $retn is defined both outside and inside your function but if you want to access the outside one from inside the function you have to use the $GLOBALS array:

$GLOBALS['retn'] .= $roomsn.",";

instead of:

$retn .= $roomsn.",";

Or, actually better. Use local variables only (globals aren't very good practice in this case).

share|improve this answer

If you're intent on doing it the (sloppy, hard) way you're doing it:

function roomGroup() {
  $retn = '';
  foreach($_POST as $key => $value) {
    if (strstr($key,"room") !== false) {
      $retn .= $value.",";
    }
  }
  return $retn;
}
share|improve this answer
    
did not work, but thanks for the answer! – lov2code Jun 29 '12 at 19:30
    
Huh, worked in my minimal example -- alas. Thanks for being friendly! – Doches Aug 12 '12 at 14:33

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