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I am trying to avoid the use of pow in C.

pow(2,16) can be written as 1<<16, but how do I represent pow(2,-16)? If I do 1/(1<<16), I get 0.

Can anyone help please?

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1  
Of course you will.. because it is integer division –  Omkant Jan 8 '13 at 15:31
    
so how do I do it? how do i represent pow(2, -16) or pow(2, -32) without using pow? –  user1838418 Jan 8 '13 at 15:33
    
why do you want to avoid pow() ? –  Bart Friederichs Jan 8 '13 at 15:33
    
because I get an error message –  user1838418 Jan 8 '13 at 15:33
2  
@user1838418: there's no such thing as overloaded functions in C. You're accidentally compiling your code as C++. In C++ you can avoid the ambiguity with std::pow(2.0, -16.0), but first decide what language you want to write. –  Steve Jessop Jan 8 '13 at 15:36

4 Answers 4

up vote 2 down vote accepted

You can use the ldexp function for floating-point powers of two, e.g. ldexp(1, -16).

You can expect that this will be efficient and exploit the fact that your platform stores floating pointer numbers as mantissa plus binary exponent if applicable, so this is the moral analogue of the integral exression 1 << 16, if you will.

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I'd upvote this if you'd explain why the code in the question doesn't work –  David Heffernan Jan 8 '13 at 15:36
    
One cannot expect that ldexp will be efficient. It depends on the implementation. –  Eric Postpischil Jan 8 '13 at 15:50

A negative power denotes raising a number to a power, then inverting.

The problem you run into is fairly simple: if you start with integers, this is all going to be done with integer math, in which case there are only two possible results when you invert: 1/1 will obviously give 1. 1/(anything > 1) will give 0.

To get meaningful results, you'll generally need to convert to floating point so the fractional result can be represented: 1/(double)(1<<16) or 1.0/(1<<16).

Alternatively, you can just use pow from the standard library.

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Make sure you use floats, instead of ints:

#include <stdio.h>
#include <math.h>


int main(int argc, char **argv) {
  printf("%f %f\n", pow(2,3), pow(2,-3));

  printf("%d %f\n", (1<<3), 1.0/(1<<3));

  return 0;
}

result:

bf@bf-laptop:~/playground$ ./test
8.000000 0.125000
8 0.125000
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as 1/(1<<16) all are int so, it typecast into integer result and hence getting as 0. why dont you type cast it to float and see the result.

(float)1.0/(1<<16)
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