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I saw somewhere that this is a special case and that +NaN goes from 0x7F800001 to 0x7FFFFFFF. Is the answer +NaN?

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2 Answers 2

+NaN is a special value for floating point numbers (And it has no decimal equivalent. It's "Not a Number"). If you just want the decimal representation of the integer, which has 7FFFFFFF as hexadecimal representation, there's no floating point involved, and no +NaN

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If you interpret 7FFFFFFF as an IEEE754 32-bit float then yes, 7FFFFFFF is NaN. You can understand these things from looking at the Wikipedia page for Single-precision floating-point format. I wrote this little C program to illustrate the point:

#include <stdio.h>

int main(){

  unsigned u0 = 0x7FFFFFFF;
  unsigned u1 = 0x7F800001;
  unsigned u2 = 0x7F800000;
  unsigned u3 = 0x7F7FFFFF;

  // *(float*)&u0 causes the data stored in u0 to be interpreted as a float
  printf("%e\n", *(float*)&u0);  // This gives nan
  printf("%e\n", *(float*)&u1);  // This also gives nan
  printf("%e\n", *(float*)&u2);  // This gives inf
  printf("%e\n", *(float*)&u3);  // This gives 3.402823e+38, the largest possible IEEE754 32-bit float

  // The above code only works because sizeof(unsigned)==sizeof(float)
  printf("%u\t%u\n", sizeof(unsigned), sizeof(float));

  // Remember that nan is only for floats, u0 is a perfectly valid unsigned.
  printf("%u\n", u0);            // This gives 2147483647

}

Again, it has to be mentioned that NaN only exists as a floating point number.

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