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This is my php code:

$allids_arr = $_REQUEST['allids'];
print_r($allids_arr);
echo $arr_count = count($allids_arr);

The array printed like this:

Array (
     [0] => 26 
     [1] => 27 
     [2] => 28 
     [3] => 29 
     [4] => 30 
     [5] => 31 
     [6] => 32 
     [7] => 33 
)

But the count display as 1.

But the correct answer is 8.

What is the problem in my code?

EDIT:

The array was i created: This is the code for my array creation:

$allids = array();
        $ikall = 0;
        foreach($alldata as $rwosall){
            $allids[$ikall] = $rwosall['journelmodel']['id'];
            $ikall++;
        }   
        $this->set('alldataids', $allids);

This is in my controller.And in my view page:

<input type="hidden" readonly="" id="allids" class="input1" name="allids" value="<?php print_r($alldataids);?>">

This value was i requested when form submitted.

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Instead of echo $arr_count = count($allids_arr); just use echo count($allids_arr); –  vivek salve Nov 17 '12 at 6:56
    
i already tested that but it return 1... –  Kichu Nov 17 '12 at 6:57
1  
You must be doing something else in the code that you aren't showing us. Try putting echo count($_REQUEST['allids']); at the top of your script. Then put $allids_arr = $_REQUEST['allids']; right afterwards. Then put echo count($allids_arr); right after that. No reason that should not give you consistent output. Also please print_r($_REQUEST) to make sure you are doing that right. –  Buttle Butkus Nov 17 '12 at 7:26
2  
@Kichu What exactly do you expect your <input..> field to do with output from print_r($array). That doesn't look like it'll work. –  DarkCthulhu Nov 17 '12 at 7:40
1  
Cthulthu is right, that form will submit a single string formatted to look like an array. You need to either pack/unpack that data using, for example, JSON, or pass it in multiple inputs, one value per input. –  DCoder Nov 17 '12 at 7:42
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4 Answers

up vote 2 down vote accepted

First of all there are few mistakes in your code.

  1. You assign array in hidden field using print_r function which is not an array.
  2. When you submit the value and get the value using $_REQUEST which is treated as a string.It looks like array that is why count is returning 1.

Solution : 1. You can assign value as comma separated like "x,y,z"

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yes i did like this then i got it ........... –  Kichu Nov 17 '12 at 8:25
add comment

you need:

echo count($allids_arr);

or

$arr_count = count($allids_arr);
echo $arr_count;

:)

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1  
but I tried in my code to do a $foo = array("hi", 2, 8); echo $c = count($foo); and it does print 3 –  動靜能量 Nov 17 '12 at 6:57
1  
Actually his version should work as well. The return value from an assignment is the RHS. –  DarkCthulhu Nov 17 '12 at 6:57
    
the two above checked but displays as 1..... –  Kichu Nov 17 '12 at 6:58
    
@Kichu do echo count($allids_arr, 1); It will count recursively, in case some elements are nested deeper. Not sure –  DarkCthulhu Nov 17 '12 at 7:01
3  
@Kichu are you sure you didn't do anything in between printing of the array and printing the count? Can you somehow make it into 3 lines of self-contained code or so that will show this behavior? –  動靜能量 Nov 17 '12 at 7:05
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$_REQUEST, by default, contains the contents of $_GET, $_POST and $_COOKIE.

But it's only a default, which depends on variables_order ; and not sure you want to work with cookies.

If I had to choose, I would probably not use $_REQUEST, and I would choose $_GET or $_POST -- depending on what my application should do (i.e. one or the other, but not both) : generally speaking :

You should use `$_GET` when someone is requesting data from your application.
And you should use `$_POST` when someone is pushing (inserting or updating ; or deleting) data to your application.

Either way, there will not be much of a difference about performances : the difference will be negligible, compared to what the rest of your script will do.

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2  
This would not explain the inconsistency in his output. –  Buttle Butkus Nov 17 '12 at 7:23
    
print_r($allids_arr); echo $arr_count = count($allids_arr); //this code work fine.there must be default in somewhere $_REQUEST.use print_r($_REQUEST); –  Ankur Saxena Nov 17 '12 at 7:31
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Try use this:

<?php
    $foo = $_REQUEST['foo'];
    print_r($foo);
    echo $arr_count = count($foo);
?>

with this query:

sample.php?foo[]=test&foo[]=baz&foo[]=foo

It return correct result:

Array ( [0] => test [1] => baz [2] => foo ) 3

...probably if you use the same name for array and params, work well.

hope this help.

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