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I need to convert from two's complement to sign-magnitude in C using only the operators

! ~ & ^ | + << >>

My approach is to find sign: int sign = !(!(a>>31));

basically, if sign == 1 . I want to flip the number and add 1 else just want to display the number.

The thing is I can't use any loops, if statements etc. This is what I'm working on:

int s_M = ((((a+1)>>31)^sign)+1)&sign;

any suggestions?

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Welcome to SO. You can use code formatting and backticks to format code for an easier read. –  rattmuff Oct 30 '13 at 17:39
    
can u use ternary operator? –  niko Oct 30 '13 at 18:10
    
That's the thing, I can't. That's what makes this tricky I have to work with what I've got. I can't either use && or || just & or | –  user2938343 Oct 30 '13 at 19:58

4 Answers 4

From http://graphics.stanford.edu/~seander/bithacks.html#IntegerAbs

int const mask = v >> 31;
unsigned int r = (v + mask) ^ mask;

Gives the absolute value (magnitude). If you wish to add the sign bit back simply mask and or the 32nd bit:

unsigned int s_M = r | (v & 0x80000000);

Or if you're looking for a one liner:

unsigned int s_M = ((v + (v >> 31)) ^ (v >> 31)) | (v & 0x80000000);
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Why const in int const mask = v >> 31;? –  chux Oct 30 '13 at 19:29
    
the thing is if I have the number 0x80000001 it should be converted to -1 instead of -2147483647. –  user2938343 Oct 30 '13 at 19:50
    
@chux I took that from the Bit Twiddling Hacks link. By making something const I presume it can maybe help the compiler make certain optimizations, though I really don't know for sure. –  OlivierD Oct 31 '13 at 13:51
    
@user2938343 (-1) in 2's complement is 0xFFFFFFFF, not 0x80000001 (-2147483647). If you stick -1 in the converter, you'll get 0x80000001 because the 32nd bit is set (- sign) and your value is 1. Unless I'm misunderstanding your question... –  OlivierD Oct 31 '13 at 13:58

When you're converting from 2 complement, you should subtract 1, not add.

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I'm not entirely sure what the output should be, but to obtain the magnitude you can do something like this:

int m = (a^(a>>31)) + sign;

Basically, shifting a negative number 31 bits to the right will make it all 1's, or 0xffffffff, which you can then use to xor the input number and make it positive. As you correctly noted sign needs to be added then for the correct result in that case.

If the input number was positive to begin with, the shift results in a zero and so the xor does nothing. Adding sign in that case also doesn't do anything, so it results in the input number.

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To get the last bit you could use mask operation

   int last_bit = 32 bit integer & 0x80000000 
   o/p  may be 0 or 0x80000000    

if it is 0 just display the given number else you have to perform the following operations to represent in signed magnitude

1) Subtract 1 from the number

2) perform 1s complement on the resultant ( that is negation ~)

3) Set the last bit of the resultant number

 I mean  ( ~ (num -`1) ) | 0x7fffffff 

since your restricted not to use - operator. Perform the 2's complement on -1 and add it to the num.

To put it simple in one line
 num & 0x80000000 ? printf("%d",(~(num+((~1)+1))) | 0x7fffffff) : printf("%d",num)   ;
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