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I have seen a code that converts integer into byte array. Below is the code on How to convert integer to byte array in php 3 (How to convert integer to byte array in php):

<?php

$i = 123456;
$ar = unpack("C*", pack("L", $i));

print_r($ar);
?>

The above code will output:

//output:
Array
(
   [1] => 64
   [2] => 226
   [3] => 1
   [4] => 0
)

But my problem right now is how to reverse this process. Meaning converting from byte array into integer. In the case above, the output will be 123456

Can anybody help me with this. I would be a great help. Thanks ahead.

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try to type casting for this. –  Yogesh Suthar Oct 2 '12 at 2:39

3 Answers 3

up vote 3 down vote accepted

Why not treat it like the math problem it is?

$i = $ar[3]<<24 + $ar[2]<<16 + $ar[1]<<8 + $ar[0];

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1  
wow, this solve my problem but I change the code into: $i = ($ar[4]<<24) + ($ar[3]<<16) + ($ar[2]<<8) + ($ar[1]); since $ar[0] doesn't exist and when no parentheses is added between plus sign it will return 0 value. but thanks. –  gchimuel Oct 2 '12 at 3:37
    
Yeah, sorry, used to zero-indexed arrays... –  PRB Oct 2 '12 at 11:05

Since L is four bytes long, you know the number of elements of the array. Therefore you can simply perform the operation is reverse:

$ar = [64,226,1,0];
$i = unpack("L",pack("C*",$ar[3],$ar[2],$ar[1],$ar[0]));
share|improve this answer

In order to get a signed 4-byte value in PHP you need to do this:

$temp = ($ar[0]<<24) + ($ar[1]<<16) + ($ar[2]<<8) + ($ar[3]);
if($temp > 2147483648)
     $temp -= 4294967296;
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