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I am a little bit confused. I have php code:

echo "Hashnum='".$Hashnum."'\n";    //it prints:    Hashnum='-308274319'
$HashStr = sprintf('%u', $Hashnum) ;
$length = strlen($HashStr);         //it prints:    HashStr='3986692977'

I expected last command print the same number, but it prints another. Why? How sprintf function works?

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Title: How fprintf works. Content: sprintf. Tags: php sprintf. Makes no sense. –  Richard A Aug 19 '13 at 10:40
1  
    
read this php.net/manual/en/function.sprintf.php –  VIVEK-MDU Aug 19 '13 at 10:43
    
fprintf($fp, "Hello %s", "World") where $fp is pointer to fopen. –  Shushant Aug 19 '13 at 10:47

2 Answers 2

%u is an unsigned integer. By definition, unsigned integers are only positive numbers, since they do not have a "sign" (a bit denoting whether the number is positive or negative). By necessity the results cannot be the same if you interpret a negative signed number into an unsigned one.

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Well, but unsigned integer would be "308274319" –  Balconsky Aug 19 '13 at 10:41
2  
No, because it's interpreting the bit representation of the number. In signed integers, the first bit denotes the sign. In unsigned integers, all bits denote values. So the bits are interpreted entirely differently. –  deceze Aug 19 '13 at 10:42

The reason is the way signed numbers are encoded in binary: It's called Two's Complement.

The following formula describes how the bits (the value of the i-th bit is given by ai, which is either zero or one) in a two's complement number are interpreted:

enter image description here

N is 32 because PHP uses 32-bit integer arithmetic.

If the sign bit is set, i.e. a31 = 1, then 232 - 1 = 231 is subtracted from the result, as indicated by: -aN-12N-1.

If the bits are interpreted as an unsigned number, and the "sign bit" is set to 1 (which it is in your case), 231 would be added instead:

enter image description here

This is why you see a difference of 232, that is two times 231.

-308274319 + 232 = 3986692977

Interpretation of unsigned numbers:

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can you tell me what i represents ?????? –  Shushant Aug 19 '13 at 11:06
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@punk i is the index of a bit: a_i denotes the i-th bit, i.e. a_0 is the least-significant bit that determines if a number is even or odd. Does that help? –  phant0m Aug 19 '13 at 11:08
    
@punk Also, take a look at the Σ/Sigma/summation notation. –  phant0m Aug 19 '13 at 11:13
    
well answered, can you tell me a perfect reason why linux converts char data type to its numeric representation (ASCII) value.I only know that working with int is a better and faster way to manipulate strings. –  Shushant Aug 19 '13 at 11:17
    
@punk It doesn't convert, it's a question of interpretation. Deep down, everything is stored as numbers. You should probably ask your own question –  phant0m Aug 19 '13 at 11:22

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