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Say I assign the following fruits:

array ('1' => 'apple', '2' => 'banana', '4' => 'grape', '8' => 'orange')

If I wanted to represent apple and banana, I could just do the following: 0001 OR 0010 to get 0011 (or 3), right?

Given the number 3, how do I convert that to 1 and 2?

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4  
0001 AND 0010 is 0. Probably you mean 0001 OR 0010 –  Hyperboreus Jul 1 '11 at 1:36
    
No, neither. He should be using the bit-wise & and | if anything. –  mario Jul 1 '11 at 1:37
    
@Hyperboreus - changed. thanks. –  StackOverflowNewbie Jul 1 '11 at 1:38
1  
FYI, it's easier to produce proper bit masks with the bitwise shift left operator: 2 << 3; // 8 –  Jonah Jul 1 '11 at 1:41
2  
@Jonah In order to produce powers of 2, it is a lot easier to use bitshift instead of power. –  Hyperboreus Jul 1 '11 at 1:42

3 Answers 3

up vote 3 down vote accepted

All keys will be loaded into $keys:

$keys = array();
$value = 3;

foreach ($arr as $key => $val)
{
   if ($value & $key)
   {
      $keys[] = $key;
   }
}
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Generally you use bitmasks this way (language is irrelevant)

BANANA = 0x1
APPLE = 0x2
GRAPE = 0x4
LEMON = 0x8
PAPAYA = 0x10
GUAYABA = 0x20


myFavoriteFruits = BANANA | GRAPE // I like both bananas and grapes.

Now to test if I like Bananas you evalute:

myFavoriteFruits & BANANA
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is 0x3 really valid? Shouldn't that be 0x4? In any case, how do I reverse the process? –  StackOverflowNewbie Jul 1 '11 at 1:40
    
Sorry, my bad. I corrected it. –  Hyperboreus Jul 1 '11 at 1:41

use the bitwise AND (&) operator in a loop to test the bits.

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do you have snippet? –  StackOverflowNewbie Jul 1 '11 at 1:38
    
looks like Tim Cooper provided one :^) –  jcomeau_ictx Jul 1 '11 at 1:43

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