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.

I'm learning about arithmetic of floating point number. And I wrote following code. But floating point exception does not occur. My environment is Cent OS 6.4 (x86_64).

Please teach me this reason.

#include <stdio.h>

int
main(void)
{
  double a,b,c;
  unsigned short int fctr;

  a=3.0;
  b=0.0;
  c=1.0;

  asm volatile(
    "fstcw %w0" // get FPU control word
    :"=m"(fctr):);
  printf("FPU control word= %X\n", fctr);

  fctr = fctr ^ 0x4;
  printf("FPU control word= %X\n", fctr);

  asm volatile(
    "fldcw %w0"  // set operand to FPU control word
    : :"m"(fctr));

  asm volatile(
    "fstcw %w0" // get FPU control word
    :"=m"(fctr):);
  printf("FPU control word= %X\n", fctr);

  c = a/b;

  return 0;
}
share|improve this question

1 Answer 1

up vote 4 down vote accepted

Probably because the x86_64 architecture by default does floating point with SSE2 not x87. (the statusword belongs to x87)

Compile with -S and check if the generated assembler really is x87.

Search for MXCSR in this link

share|improve this answer
1  
That's correct. feenableexcept should be used instead of the inline asm, that will also work with the SSE implementation. –  Jester May 29 '14 at 15:07
    
I confirmed generated instruction of division by gcc. Following is it. divsd -0x10(%rbp),%xmm0 divsd is instruction of SSE2. I got that's why floating point exception does not occur?. Thank you for teaching me. –  kuni255 May 31 '14 at 9:45
    
I don't know much about SSE<x> exception support. I appended the only link I had to the original post, it seems to suggest setting a bit in mxcsr (what I assume the named glibc feenabledexcept does for you, but I don't use glibc since I'm generally a FreeBSD user). The article warns for performance issues though, like always with floating point, this is a tradeoff. –  Marco van de Voort May 31 '14 at 14:24

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.