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I'm new here and I would be very glad if anyone could help me solving this problem. I want to display the selection of time that are not in array $time from array $data. It supposed to display 11 out of 12 since the there is one same item between those array. However it only display one of it. Hopefully somebody can help me. Thank you in advanced!

<?php

$q = "SELECT masa FROM pra_temujanji where status = 'Diterima' and hari = '$hari' and Doktor = '$Doktor'";
$select = mysql_query($q);
$time = mysql_fetch_array($select);

    $qry = "SELECT Masa FROM masa_temujanji";
    $qid = mysql_query ($qry);
    $data = mysql_fetch_array($qid);

    foreach($time as $elem) $time[$elem['masa']];
    foreach($data as $elem) $data[$elem['Masa']];
    ksort($data); ksort($time);

    $waktu = array_diff($data, $time);
    ?>

    <option value="<?php print_r($waktu['Masa'])?>"><?php print_r($waktu['Masa'])?></option>


    </select>   

I dont really know how either the previous post will be replace or not so i just edit in here. I can display the array now but the output is like this.

09:00:00 09:30:00 . . . Notice: Unidentified index: Masa ...... 10:00:00 12:00:00

I dont want the Error to appear. Its actually the array_diff between both array. How can it be skipped?

The code:

<?php   
    $q = "SELECT masa FROM pra_temujanji where status = 'Diterima' and hari = '$hari' and Doktor = '$Doktor'";
    $select = mysql_query($q);
    while($time = mysql_fetch_array($select)):

    $qry = "SELECT Masa FROM masa_temujanji";
    $qid = mysql_query ($qry);
    while ($data = mysql_fetch_array($qid)):

    $waktu = array_diff($data, $time);
    ?>

    <option value="<?php print_r($waktu['Masa'])?>"><?php print_r($waktu['Masa'])?></option>

    <?php
    endwhile;
    ?>   
    </select>
    <?php
    endwhile;
    ?>      

Thank you for your help. Here is the code that solved my problem

<?php  

$q = "SELECT masa FROM pra_temujanji where status = 'Disahkan Lulus' and hari = '$hari' and Doktor = '$Doktor'";
$select = mysql_query($q);
while ($time = mysql_fetch_array($select)){
    $masa[] = $time['masa'];
}
if(isset($masa)){

$qry = "SELECT Masa FROM masa_temujanji";
$qid = mysql_query ($qry);
while ($data = mysql_fetch_array($qid)){
$Masa[] = $data['Masa'];

}
$waktu = array_diff($Masa, $masa);
foreach( $waktu as $key => $value){
?>

<option value="<?php  echo $value ?>"><?php  echo $value ?></option>

  <?php } }
  else{
      $qry = "SELECT Masa FROM masa_temujanji";
$qid = mysql_query ($qry);
while ($data = mysql_fetch_array($qid)){
$Masa[] = $data['Masa'];

}
//$waktu = array_diff($Masa, $masa);
foreach( $Masa as $key => $value){
?>

<option value="<?php  echo $value ?>"><?php  echo $value ?></option>
<?php

}}
  ?>

Thank you again.

share|improve this question
    
Before array_diff do var_dump($data);var_dump($time); and give us the result here. – user4035 Jul 14 '14 at 19:14
    
what is the point of the foreach loops? You're essentialy just doing foreach(...) { 1; }. they're do-nothing loops, other than possibly trying to access non-existing array keys. And note that the fetch calls only return a SINGLE row of data from the queries. that means your $time and $data arrays will only ever contain ONE element to begin with. – Marc B Jul 14 '14 at 19:15
    
Thank you @user4035. I did try to put those but still I got only one result. – wocha Jul 14 '14 at 19:38
    
Thank you @MarcB. I thought fetch calls can return all the data. I did try to use while($waktu = array_diff($data,$time)): but it keeps loading. – wocha Jul 14 '14 at 19:41
    
why wouldn't it? if array_diff returns a non-empty array, your while loop can never terminate. You REALLY need to start reading the docs on the functions you're using. It's obvious you're just doing cargo-cult programming. – Marc B Jul 15 '14 at 16:49

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