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In the C++ standard, std::ios::openmode, std::ios::fmtflags and std::ios::iostate are implementation defined. But std::ios::goodbit is standardized to be equal to zero. My question is : can these bitmask be casted to boolean values according to the standard. In other words, to test if an error flag is set, can we type :

inline void myFunction(std::ios::iostate x = std::ios::goodbit) 
{
    if (x) { // <- is it ok or do I have to type "if (x != std::ios::goodbit)" ?
        /* SOMETHING */    
    }
}
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1 Answer 1

up vote 3 down vote accepted

No this is not portable code. std::ios::iostate is a Bitmask type which, according to the C++ standard (17.5.2.1.3):

Each bitmask type can be implemented as an enumerated type that overloads certain operators, as an integer type, or as a bitset

If iostate is implemented in terms of the latter case, then your code will fail to compile as std::bitset has neither an operator bool nor is it implicitly convertible to an integral type (as in your case).

Note: The following fails to compile:

  std::bitset<8> b;
  return (b) ? 1 : 0;

while this works:

  std::bitset<8> b;
  return (b != 0) ? 1 : 0;
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So the only portable way to do this is x != std::iostate::goodbit isn't it ? –  Vincent Oct 7 '12 at 22:26
    
@Vincent No. You can use the functions such as good, bad and fail. –  quasiverse Oct 7 '12 at 22:27
    
Why x != std::iostate::goodbit may not work ? –  Vincent Oct 7 '12 at 22:29
    
@Vincent It may. I'm just answering your question that it isn't the only portable way. –  quasiverse Oct 7 '12 at 22:30
    
See my edit, x != std::iostate::goodbit also works fine. –  Stacker Oct 7 '12 at 22:33

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