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hello i'm going to get array data from for. i have a code but it works not good in the previous code cs=2

for($k=0;$k<$cs;$k++)
{ 


$SQL = "SELECT duration FROM core_network WHERE location=('".$location_c[$k]."')";
$result = mysql_query($SQL);


$cks="0";
$duration=array();
while ($db_field = mysql_fetch_array($result)) {
$duration_c[$cks]= $db_field['duration']; //*here must save to data
 $cks++;

} 
 }

i have saved this code in the search_l.php

 <?php include("lib/search_l.php"); ?>



  <?php
if($cs!=0){
for($i=0;$i<$cs;$i++)
{ 

?>



 <div id="alarmdisplay">
   <table class width="634" border="0" cellspacing="3" cellpadding="3">
  <tr class="search">
    <td width="256"><?php echo $location_c[$i] ?></td>
    <td width="154" class="247"><?php  echo $duration_c[$i]
?></td>
    <td width="194">&nbsp;</td>
  </tr>
 </table>

in here it must be print 2 duration. but it prints only one others have error Notice: Undefined offset: 1 in how to print it by correct?

when i test it to check correct i noticed that:

$result)) {
$duration_c[$cks]= $db_field['duration'];
 $cks++;

} echo $duration_c[$cks]   //*it prints correct i meant prints 2 test data
}

after that

$result)) {
$duration_c[$cks]= $db_field['duration'];
 $cks++;

}  
}
echo $duration_c[$cks]  //*it prints not correct i meant prints only first test data

how to correct it?

share|improve this question
    
You most likely want to loop through the array and echo each time you have a new result in the loop. –  Rob Nov 13 '12 at 8:32
    
yes i want to get 2 data each corresponding cs but now i can get only one of them bt this code –  Batnasan ganpurev Nov 13 '12 at 8:35

4 Answers 4

up vote 0 down vote accepted
$duration_c=array();//Should be declared outside loop

for($k=0;$k<$cs;$k++)
 { 
  $SQL = "SELECT duration FROM core_network WHERE location=('".$location_c[$k]."')";
  $result = mysql_query($SQL);
  $cks = 0;//String variable
  while ($db_field = mysql_fetch_array($result,MYSQL_ASSOC)) {
                                                    //^---------returns associative array
      $duration_c[$cks]= $db_field['duration'];
      $cks++;
   } 
 }
share|improve this answer
    
hi thanks for your answer but i can not solve still. i prints only last data in outside of for loop. in the inside it prints ok. –  Batnasan ganpurev Nov 15 '12 at 5:45
    
@Batnasanganpurev use var_dump($duration_c) outside of for loop to check values it should get values can you show me full code –  Sibu Nov 15 '12 at 6:47
    
hello i have found the error thanks for you your declare outside helps me lot thanks –  Batnasan ganpurev Nov 15 '12 at 6:55
    
@Batnasanganpurev yup, you were declaring inside the for loop so everytime it was getting rewritten, declaring it outside will make it global..cheers n happy coding –  Sibu Nov 15 '12 at 7:00
    
hello if there are a duplicate Location how to choose one of them and how to know how many duplicated locations –  Batnasan ganpurev Nov 20 '12 at 14:47

if you want a key types result (assoc array), use

mysql_fetch_assoc();

instead

mysql_fetch_array();
share|improve this answer
    
i have test it but there was same result. only difference was whan i use mysql_fetch_array();it prints first data, down vote accept if you want a key types result (assoc array), use mysql_fetch_assoc(); it only prints second data –  Batnasan ganpurev Nov 13 '12 at 8:39

Alright, then try something like this, this will get the results you inserted in the array.

<?php

for($i = 0; $i < count($duration); ++$i) {
    echo $duration[$i];
?> 
share|improve this answer
    
i need to echo $duration outside of for loop. it is normal in inside but outside it prints only last data. –  Batnasan ganpurev Nov 15 '12 at 5:20

there's a simple type error in your code:

$duration=array();

should be

$duration_c=array();

otherwise it will be a problem of scoping, because $duration_c won't be know outside your while loop.

share|improve this answer

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