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I'm trying to increment the value for $variable each time a duplicate variable occurs. I'm not sure if this is syntactically correct, but I think this is semantically correct. var_dump seems to spit out the correct outputs, but i get this error: Notice: Undefined index...

$newarray = array();
foreach ($array as $variable)
{
    $newarray[$variable]++; 
    var_dump($newarray);
}

$array = (0 => h, 1 => e, 2 => l, 3=> l, 4=> o);

goal:

'h' => int 1
'e' => int 1
'l' => int 2
'o' => int 1

My code works, it's just that I get some weird NOTICE.

share|improve this question
    
not a good practice and really don't know how much optimized this is considering the if performance but you could add @ in front of the operation like this @$newarray[$variable]++; and the notice will be supressed.. the bad part about this is that if you really have a problem in there it won't be displayed :) –  Catalin Nov 9 '11 at 8:36
    
the issue is fixed by adding an isset check –  diesel Nov 9 '11 at 8:38

5 Answers 5

up vote 4 down vote accepted
$newarray = array();
foreach ($array as $variable)
{
    if (isset($newarray[$variable]))
    {
        $newarray[$variable]++; 
    } else {
        $newarray[$variable] = 0; 
    }
}
share|improve this answer
1  
thanks! that isset did it. but i'm still trying to figure out why i needed that check? –  diesel Nov 9 '11 at 8:37
    
the reason is because if the key does not exist in the array, add the key and set it to 0. gotcha. –  diesel Nov 9 '11 at 8:41
3  
Shouldnt it be "$newarray[$variable] = 1; " Otherwise, the first 'increment' will set to zero (and therefore not counted!) –  barryhunter Apr 23 '12 at 15:22

Take a look at the function array_count_values(). It does exactly what you are trying to do.

Sample from php.net:

$array = array(1, "hello", 1, "world", "hello");
print_r(array_count_values($array));

Result:

Array
(
    [1] => 2
    [hello] => 2
    [world] => 1
)
share|improve this answer

You are incrementing the wrong thing, try this instead:

foreach ($array as $key => $variable) {
   $array[$key]++; 
   var_dump($array);
}
share|improve this answer
    
woops, i think it was a bit unclear from the previous code, I have updated it. not sure if that's still the issue though. –  diesel Nov 9 '11 at 8:26
<?php
$newarray = array();
foreach ($array as $variable) {
    if ( !array_key_exists($variable, $newarray) ) {
        $newarray[$variable] = 0;
    }
    ++$newarray[$variable];
}
var_dump($newarray);

But you could also use array_count_values() instead.

share|improve this answer
$newarray = array();
foreach ($array as $variable)
{
    if(!isset($newarray[$variable]))
      $newarray[$variable] = 0;

      $newarray[$variable]++; 
    var_dump($newarray);
}
share|improve this answer
    
Thanks, I've gotten this figured out already. I was missing the isset check. –  diesel Nov 9 '11 at 9:28

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