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I need to compute a number (a/(2**b) using only bitwise operators such as ! & ^ ~ and shifts. I was given the following hint but I'm new to C and I dont know what the code means:

int bias = x>0 ? 0 : ((1<<n)-1);

Can anyone explain it to me?

I thought a>>b would work but I dont think it works for negative numbers.

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1  
a>>b performs correct algebraic division (which 'rounds' down), but if you want to round towards zero, you have to make a special effort. By the way, why not write x/(1<<n) and look at the assembly code the compiler generates? That should suggest an idea for the way to write it in C. –  R.. Sep 25 '10 at 0:42
    
doesnt a>>b do integer division? if it is 15/2**1=7. 1111>>1 = 0111? –  Dan Sep 25 '10 at 0:51
1  
a>>b performs an operation that is implementation-defined when a is negative. It's perfectly allowable for it to do a logical shift, which creates a fairly useless result. –  caf Sep 25 '10 at 6:34
    
@caf: Is there any efficient 100% portable way to code the operation which x >>= 4 would compute on most machines? The best I can figure would be x = x < 0 ? (unsigned)x >> 4 : ((unsigned)x >> 4) - ((signed)((~0u) >> 4) + 1);, but that's rather icky. Using / seems even worse, since the compiler will generate extra code to produce an unwanted adjustment on negative values which one will then have to undo. –  supercat Nov 20 '13 at 0:06
    
@supercat: x < 0 ? (x - 15) / 16 : x / 16 is a twos complement arithmetic right shift by 4, as long as x - 15 does not overflow, but you're right - the gcc optimiser at least does not seem to notice this. –  caf Nov 20 '13 at 4:40

3 Answers 3

up vote 3 down vote accepted

That particular bit of code gives you a bias of 0 if x is positive. Otherwise it produces a mask of the lower n bits. The x = a ? b : c; pattern is called the ternary operator(technically the 'conditional operator', apparently) in C.

n      (1<<n)    (1<<n)-1     binary
0        0x01       0x00     00000000
1        0x02       0x01     00000001
2        0x04       0x03     00000011
3        0x08       0x07     00000111
4        0x10       0x0F     00001111
5        0x20       0x1F     00011111
6        0x40       0x3F     00111111
7        0x80       0x7F     01111111
           ...
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In spite of that wiki page's description, I don't think I've ever heard anyone call ?: the 'conditional operator', it's always been the 'ternary operator', at least whenever anyone's known what to call it at all. –  jkerian Sep 25 '10 at 0:46
    
It'll probably continue to be called the "ternary operator" til someone comes up with a new ternary operator. Then the term will be confusing. "Conditional operator", however, will remain unambiguous. –  cHao Sep 25 '10 at 1:03
    
I don't really get the otherwise part. Say if n = 5, then the variable bias = 00011111 in binary? –  Dan Sep 25 '10 at 1:19
    
C99 calls it the "conditional operator" - § 6.5.15. –  Matthew Slattery Sep 26 '10 at 0:03
    
@Dan: yes, if n=5 bias will be set to 11111 (leading zeroes depends on the variable size, of course) –  jkerian Sep 29 '10 at 15:31

well,x<<n works correctly for positive numbers. so why dont you just use something like result=if sign=1 then (x<<n) else(-x<<n) (replace the iftehenelse by some masking with the sign bit)

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Sigh... this is a homework question. The student is asking for help with an assignment from the Computer Systems, a Programmers' Perspective textbook.

For future reference, any time someone says "I'm only allowed to use the XYZ operators to do something", it's probably a homework question.

I don't suppose there's a way to take reputation away from people who ask for help with homework questions, is there?

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