14

Does any standard specifies what should be the output?

For example this code:

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

int main(int argc, char** argv) {
  float a = INFINITY;
  float b = -INFINITY;
  float c = NAN;

  printf("float %f %f %f\n", a, b, c); 
  printf("int %d %d %d\n", (int) a, (int) b, (int) c); 
  printf("uint %u %u %u\n", (unsigned int) a, (unsigned int) b, (unsigned int) c); 
  printf("lint %ld %ld %ld\n", (long int) a, (long int) b, (long int) b); 
  printf("luint %lu %lu %lu\n", (unsigned long int) a, (unsigned long int) b, (unsigned long int) c); 

  return 0;
}

Compiled on gcc version 4.2.1 (Apple Inc. build 5664) Target: i686-apple-darwin10

Outputs:

$ gcc test.c && ./a.out 
float inf -inf nan
int -2147483648 -2147483648 -2147483648
uint 0 0 0
lint -9223372036854775808 -9223372036854775808 -9223372036854775808
luint 0 9223372036854775808 9223372036854775808

Which is quite weird. (int)+inf < 0 !?!

2
  • 4
    It's Undefined Behaviour - what else could it be ? – Paul R Oct 21 '10 at 11:20
  • 1
    In Java infinities are cast to the closest value (MAX_VALUE or MIN_VALUE) and NaN is cast to 0. – starblue Oct 21 '10 at 18:32
17

As Paul said, it's undefined:

From §6.3.1.4:

6.3.1.4 Real floating and integer

When a finite value of real floating type is converted to an integer type other than _Bool, the fractional part is discarded (i.e., the value is truncated toward zero). If the value of the integral part cannot be represented by the integer type, the behavior is undefined.50)

Infinity isn't finite, and the integral part can't be represented in an integral type, so it's undefined.

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