Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
signed int x= -5;
unsigned int y=x;

what is the value of y? and how?

share|improve this question
6  
Implementation defined. –  KennyTM Sep 8 '10 at 14:28
5  
When you tried this, what did you see? –  S.Lott Sep 8 '10 at 14:29
3  
@KennyTM, not implementation defined; casting from an unsigned int to a signed int that can't represent it is implementation defined, but the other way around (signed -> unsigned) is well-defined. –  bdonlan Sep 8 '10 at 14:35
2  
@bdonlan: UINT_MAX is implementation defined. –  KennyTM Sep 8 '10 at 14:37
3  
@Steve Jessop: The answer, according to the standard, is UINT_MAX - 4. UINT_MAX is implementation-defined. There is a straight answer, but the numerical one is implementation-defined. –  David Thornley Sep 8 '10 at 17:05
show 10 more comments

5 Answers

It depends on the maximum value of the unsigned int. Typically, a unsigned int is 32-bit long, so the UINT_MAX is 232 − 1. The C standard (§6.3.1.3/2) requires a signed → unsigned conversion be performed as

Otherwise, if the new type is unsigned, the value is converted by repeatedly adding or subtracting one more than the maximum value that can be represented in the new type until the value is in the range of the new type.

Thus y = x + ((232 − 1) + 1) = 232 − 5 = 4294967291.


In a 2's complement platform, which most implementations are nowadays, y is also the same as 2's complement representation of x.

-5 = ~5 + 1 = 0xFFFFFFFA + 1 = 0xFFFFFFFB = 4294967291.

share|improve this answer
add comment

From the C99 standard:

6.3.1.3 Signed and unsigned integers

  1. When a value with integer type is converted to another integer type other than _Bool, if the value can be represented by the new type, it is unchanged.
  2. Otherwise, if the new type is unsigned, the value is converted by repeatedly adding or subtracting one more than the maximum value that can be represented in the new type until the value is in the range of the new type. 49)

49) The rules describe arithmetic on the mathematical value, not the value of a given type of expression.

So you'll be looking at, effectively, y = x + UINT_MAX + 1.

This just happens to mean that the twos-complement representation is used unchanged as an unsigned integer, which makes this very fast on most modern computers, as they use twos-complement for signed integers.

share|improve this answer
3  
You are missing one: UINT_MAX is 2^N-1. –  Jens Gustedt Sep 8 '10 at 14:39
    
Not entirely correct. The correct formula is y = x + UINT_MAX - 1. –  AndreyT Sep 8 '10 at 14:40
1  
@AndreyT: Actually the correct formula is y = x + UINT_MAX + 1. –  KennyTM Sep 8 '10 at 14:54
    
@Jens @KennyTM, indeed, fixed –  bdonlan Sep 8 '10 at 15:20
    
@KennyTM: Yes, you are right y = x + UINT_MAX + 1. –  AndreyT Sep 8 '10 at 16:37
add comment

The value of y is UINT_MAX - 5 + 1, i.e. UINT_MAX - 4.

When you convert signed integer value to unsigned type, the value is reduced modulo 2^N, where N is the number of value-forming bits in the unsigned type. This applies to both negative and positive signed values.

If you are converting from signed type to unsigned type of the same size, the above means that positive signed values remain unchanged (+5 gets converted to 5, for example) and negative values get added to MAX + 1, where MAX is the maximum value of the unsigned type (-5 gets converted to MAX + 1 - 5).

share|improve this answer
add comment

Signed values are typically stored as something called two's complement:

Two's complement numbers are a way to encode negative numbers into ordinary binary, such that addition still works. Adding -1 + 1 should equal 0, but ordinary addition gives the result of 2 or -2 unless the operation takes special notice of the sign bit and performs a subtraction instead. Two's complement results in the correct sum without this extra step.

This means that the actual representation of the numbers -5 and 4294967291 in memory (for a 32 bit word) are identical, e.g: 0xFFFFFFFB or 0b11111111111111111111111111111011. So when you do:

unsigned int y = x;

The contents of x is copied verbatim, i.e. bitwise to y. This means that if you inspect the raw values in memory of x and y they will be identical. However if you do:

unsigned long long y1 = x;

the value of x will be sign-extended before being converted to an unsigned long long. In the common case when long long is 64 bits this means that y1 equals 0xFFFFFFFFFFFFFFFB.

It's important to note what happens when casting to a larger type. A signed value that is cast to a larger signed value will be sign-extended. This will not happen if the source value is unsigned, e.g.:

unsigned int z = y + 5;
long long z1 = (long long)x + 5; // sign extended since x is signed
long long z2 = (long long)y + 5; // not sign extended since y is unsigned

z and z1 will equal 0 but z2 will not. This can be remedied by casting the value to signed before expanding it:

long long z3 = (long long)(signed int)y + 5;

or analogically if you don't want the sign extension to occur:

long long z4 = (long long)(unsigned int)x;
share|improve this answer
1  
But the question is about conversion to unsigned type. Yet, in the answer you are only mentioning conversions to signed types. –  AndreyT Sep 8 '10 at 15:07
    
I beg to differ, though I do focus my response somewhat on conversions to signed types since that's where there be dragons. I also don't think my response merits the downvote but I'm biased. –  Andreas Magnusson Sep 9 '10 at 6:59
    
+1: for "two's complement", even if actually the evasive wording of C99 gives a definition that would also work with a compiler that would use say BCD. I wonder is such C compiler exists anyway, until proved wrong I believe all currently existing C compilers use two's complement. –  kriss Sep 9 '10 at 7:33
add comment

y=0xfffffffb it's the binary representation of -5 (two's complement)

share|improve this answer
    
May you please explain it more.... –  sambhav jain Sep 8 '10 at 14:32
1  
The result does not depend on any "binary representation". The result is dictated by the requirements of the language standard. And the standard is rather explicit in this case. –  AndreyT Sep 8 '10 at 14:36
    
@AndreyT. To be fair, although it isn't stated that way, it is certainly true that 2's complement -> unsigned conversion results in the same bit pattern (I think the C++ standard mentions this in passing, can't remember whether the C standard does). Philibert's description is equivalent to the definition in the standard: you can convert signed -> unsigned by working out the 2's complement representation of the signed value, then reading it as an unsigned value. He never said that's how the implementation actually does it (although no doubt 2's complement implementations do). –  Steve Jessop Sep 8 '10 at 14:51
    
@Steve Jessop: Well, it is not equivalent to the definition in the standard at least because the standard definition is not limited to conversions between types of the same size, while the "same representation" approach is only applicable when the sizes are the same. –  AndreyT Sep 8 '10 at 15:11
    
@AndreyT: true, it's only equivalent for the case being asked about, it doesn't address other cases at all. I'm more worried about the assumption that int is 32 bits. –  Steve Jessop Sep 8 '10 at 17:03
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.