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i am using the following multiselect box to take input from users, this then gets posted to my php form which adds it to the database, the problem is, all I am getting added is the first selection, if the user selects more than one field I still only get the first field.

If the user selects lets say internet, drawing,maths I want that to be put into the database, at the moment all that is inserted is internet, or whatever is the first thing selected in the list.

My form looks like this >>

    <form action="../files/addtodb.php" method="post" style="width:800px;">
    <select name="whatisdeviceusedfor[]" size="1" multiple="multiple" id="whatisdeviceusedfor[]">
        <option value="games">Games</option>
        <option value="takingphotos">Taking Photos</option>
        <option value="maths">Maths</option>
        <option value="reading">Reading</option>
        <option value="drawing">Drawing</option>
        <option value="internet">Internet</option>
        <option value="other">Other (enter more info below)</option>
      </select>
      <input type="submit" name="submit" id="submit" value="Submit">
      </form>

The php side looks like this >>

 <?php

 // Implode what is device used for
$usedfor = $_POST['whatisdeviceusedfor'];
$arr = array($usedfor);
$whatisdeviceusedfor = implode(" ",$arr);



// Insert posted data into database
mysql_query("INSERT INTO itsnb_year5questionaire (whatisdeviceusedfor) VALUES   '$whatisdeviceusedfor'") or die(mysql_error()); 

   ?>
share|improve this question
1  
why $whatisdeviceusedforstring = $whatisdeviceusedfor; ??? –  NullPoiиteя Dec 4 '12 at 14:31
    
ahh thats not supposed to be in there, I copied the section of code that applied to the problem instead of copying the whole page, I will remove it. –  Iain Simpson Dec 4 '12 at 14:37
1  
what do you want to do ??? –  NullPoiиteя Dec 4 '12 at 14:37
    
If the user selects lets say internet, drawing,maths I want that to be put into the database, at the moment all that is inserted is internet, or whatever is the first thing selected. –  Iain Simpson Dec 4 '12 at 14:39
    
This is a Q&A site, not a search engine! It seems to me, that you have not even searched for that problem before posting this question. –  feeela Dec 4 '12 at 14:41

4 Answers 4

up vote 2 down vote accepted

you are already getting array by select so you dont need to use $arr = array($usedfor);this again

just try

$usedfor = $_POST['whatisdeviceusedfor'];

$whatisdeviceusedfor = implode(" ",$usedfor);

or

$usedfor = $_POST['whatisdeviceusedfor'];


$strings ='';
foreach ($usedfor as $item){
    $strings .=' '. $item;
}
echo $strings;

and

 <select name="whatisdeviceusedfor[]" size="5" multiple="multiple" id="whatisdeviceusedfor[]">
                                           ^^             
                                           ||change to option you want to select 

i have changed size="5" so it will select now 5 at a time ...you have only 1 so it will let only 1 select at a time

result

enter image description here

warning

your code is vulnerable to SQL injection also use of mysql_* function are deprecated use either PDO or MySQLi

share|improve this answer
    
…which will throw an E_WARNING if the posted value is not an array. (Warning: implode(): Invalid arguments passed) You should at least cast it to an array: implode( ' ', (array) $_POST['whatisdeviceusedfor'] ); –  feeela Dec 4 '12 at 14:45
    
@feeela noop tried and working fine –  NullPoiиteя Dec 4 '12 at 14:46
    
Enable your error reporting and execute implode with a string as second parameter – then you'll see the error. (Yes it could be a string if the client sends one – it's a user input don't trust it and always set the data type you're awaiting. Just because sometimes an array was sent, that doesn't mean at all that an array will always be send.) –  feeela Dec 4 '12 at 14:50
    
Thanks very much for your help, that works like it was wanting now. :-) –  Iain Simpson Dec 4 '12 at 15:10
    
@IainSimpson yours very welcome –  NullPoiиteя Dec 4 '12 at 15:12

If you have selected mutliple items via a SELECT or via CHECKBOXES, the form will return an array-like data structure. You will always need to loop over that data and store each item individually into the database or concatenate the values to a string before inserting.

share|improve this answer

first change size = "5" to see good the list

then try to make like that (its second option if you like it)

if ($_POST) {

  // post data

 $games = $_POST["games"];
 $takingphotos = $_POST["takingphotos"];
 .
  ...


  // secure data

  $games = uc($games);
  $boats = uc($takingphotos);
  .
  ...
 }   


  // insert data into database

  $query = "INSERT INTO itsnb_year5questionaire (games, takingphotos,....)   
             VALUES('$games','$takingphotos',......)";
     mysql_query($query) or die(mysql_error());

    echo 'Thanks for your select!';
share|improve this answer

Because $usedfor is contain the array you can directly use it in foreach to save the each value in the value.Try this it may help you:

<?php   
$usedfor = $_POST['whatisdeviceusedfor'];

foreach($usedfor as $arr){
mysql_query('INSERT INTO itsnb_year5questionaire(whatisdeviceusedfor) VALUES("'.$arr.'"') or die(mysql_error()); 

}
share|improve this answer
    
will this put all the values together into a string ? –  Iain Simpson Dec 4 '12 at 14:52
    
@Iain Simpson No. Was that a requirement? Than you should ask for it. –  feeela Dec 4 '12 at 14:54
    
what you want to add each value as an individual records or in a single record –  Toretto Dec 4 '12 at 14:55
    
This gives me >> You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ''games'' at line 1 –  Iain Simpson Dec 4 '12 at 15:07
    
@IainSimpson I have update my query see if it works –  Toretto Dec 4 '12 at 17:03

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