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While writing some test cases, and some of the tests check for the result of a NaN.

I tried using std::isnan but the assert failes:

Assertion `std::isnan(x)' failed.

After printing the value of x, it turned out it's negative NaN (-nan) which is totally acceptable in my case.

After trying to use the fact that NaN != NaN and using assert(x == x), the compiler does me a 'favor' and optimises the assert away.

Making my own isNaN function is being optimised away as well.

How can I check for both equality of NaN and -NaN?

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6  
o_O? Negative NaN is NaN. –  kennytm Aug 29 '10 at 21:17
1  
Could you show how you write your own isNaN, and perhaps the built-in one from your compiler if you have it? One way to test for a NaN (there are several, as you noticed) is to test the bit pattern at en.wikipedia.org/wiki/NaN (exponent is 11..11). –  Pascal Cuoq Aug 29 '10 at 21:18
    
Which compiler are you using, and what does your test code look like? –  jalf Aug 29 '10 at 21:20
1  
This smells like a bug in your standard library's implementation of std::isnan to me. –  Billy ONeal Aug 29 '10 at 21:23
2  
Considering some of the horror stories I have already heard, I do not find the idea of such a bug even in glibc surprising. There is goodwill, don't get me wrong, but compiler authors have a long history of getting floating-point wrong. –  Pascal Cuoq Aug 29 '10 at 21:33

6 Answers 6

up vote 22 down vote accepted

This is embarrassing.

The reason the compiler (GCC in this case) was optimising away the comparison and isnan returned false was because someone in my team had turned on -ffast-math.

From the docs:

-ffast-math
    Sets -fno-math-errno, -funsafe-math-optimizations,
    -fno-trapping-math, -ffinite-math-only, -fno-rounding-math, -fno-signaling-nans and fcx-limited-range.

    This option causes the preprocessor macro __FAST_MATH__ to be defined.

    This option should never be turned on by any -O option since it can result in incorrect output for programs which depend on an exact implementation of IEEE or ISO rules/specifications for math functions. 

Notice the ending sentence - -ffast-math is unsafe.

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I just noticed the exact same problem with the MS compiler when used with /fp:fast flag. Works fine with /fp:precise though. –  stijn Aug 27 '11 at 11:50

This looks like a bug in your library's implementation of isnan() to me. It works fine here on gcc 4.2.1 on Snow Leopard. However, what about trying this?

std::isnan(std::abs(yourNanVariable));

Obviously, I can't test it, since std::isnan(-NaN) is true on my system.

EDIT: With -ffast-math, irrespective of the -O switch, gcc 4.2.1 on Snow Leopard thinks that NAN == NAN is true, as is NAN == -NAN. This could potentially break code catastrophically. I'd advise leaving off -ffast-math or at least testing for identical results in builds using and not using it...

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There's C99 isnan() which you should be able to use.

If in your implementation it does not work correctly (which one is that?) you can implement your own, by reinterpret_casting to long and doing IEEE bit magic.

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1  
That isnan is exactly what he's already using. –  Billy ONeal Aug 29 '10 at 21:28

You can check the bits of number. IEEE 754 has defined mask for NaN:

  • A signaling NaN is represented by any bit pattern between X'7F80 0001' and X'7FBF FFFF' or between X'FF80 0001' and X'FFBF FFFF'.
  • A quiet NaN is represented by any bit pattern between X'7FC0 0000' and X'7FFF FFFF' or between X'FFC0 0000' and X'FFFF FFFF'.

This might be not portable, but if you are sure about your platfofm it can be acceptable. More: http://publib.boulder.ibm.com/infocenter/lnxpcomp/v8v101/index.jsp?topic=/com.ibm.xlf101l.doc/xlfopg/fpieee.htm

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That would've been my last resort, I'm still trying to find the most portable solution. –  LiraNuna Aug 29 '10 at 21:31
    
@LiraNuna it is not that drammatic. If you implement it keeping endiannes in mind it will be portable enought –  Andrey Aug 29 '10 at 21:53

isnan() is expected to have undefined behaviour with -ffast-math.

This is what I use in my test suite:

#if defined __FAST_MATH__
#   undef isnan
#endif
#if !defined isnan
#   define isnan isnan
#   include <stdint.h>
static inline int isnan(float f)
{
    union { float f; uint32_t x; } u = { f };
    return (u.x << 1) > 0xff000000u;
}
#endif
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This is based off the wikipedia article posted in the comments. Note that it's entirely untested -- it should give you an idea of something you can do though.

bool reallyIsNan(float x)
{
    //Assumes sizeof(float) == sizeof(int)
    int intIzedX = *(reinterpret_cast<int *>(&x));
    int clearAllNonNanBits = intIzedX & 0x7F800000;
    return clearAllNonNanBits == 0x7F800000;
}

EDIT: I really think you should consider filing a bug with the GLibc guys on that one though.

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This will return true for Inf, too. –  sam hocevar Sep 17 '11 at 14:28
    
@Sam: As I said, I did not test it, I got it from Wikipedia. I never made any claims about it's correctness. In any case, the OP already answered this question. I don't see why we're digging up a 1.5 year old question which was already marked answered and complaining about it. –  Billy ONeal Sep 17 '11 at 17:24
2  
I'm not complaining; you are. I found this question from a Google search and saw it had no satisfying answer. I'm commenting on incorrect or incomplete answers because I don't want someone else to spend time figuring out why they are incorrect or incomplete. Also, the approved answer gives an explanation, not a solution. How old this question is has absolutely no relevance. If you have a problem with that, you probably missed the point of this website. Just relax, dude. –  sam hocevar Sep 18 '11 at 0:15
    
Oh by the way, I also think negative comments are an order of magnitude more civil than downvoting without a comment. –  sam hocevar Sep 18 '11 at 0:36
    
@Sam: 1. As far as "No satisfying answer" is concerned, I invite you to look earlier on this page for the accepted answer the OP posted, which details explicitly exactly what is going on. 2. You got downvoted because you copied another answer, more than 6 months later, on a question that has long since been answered. –  Billy ONeal Sep 19 '11 at 1:46

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