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How I can prevent the last line of this code from compiling?

#include <boost/optional.hpp>

int main()
{
    typedef boost::optional<int> int_opt;
    int_opt opt = 0;
    bool x = opt;  // <- I do not want this to compile
}

The last line doesn't examine opt's contained int value, but instead compiles as a type conversion to bool, and doesn't seem to be what the user intended.

The safe bool idiom seems to be relevant here?

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2  
What do you mean something like? Describe in English what you want. The code obviously does not describe what you want. So how should we know? –  Oswald Feb 7 '11 at 16:02
    
you can't, boost::optional implements operator! and this is why the last line above compiles. You can't even derive from this to hide that operator - you need to fix your code. –  Nim Feb 7 '11 at 16:17

2 Answers 2

up vote 11 down vote accepted

The whole point of boost::optional is to enable code like this:

void func(boost::optional<int> optionalArg)
{
    if (optionalArg) {
       doSomething(*optionalArg);
    }
}

So the implicit conversion to bool is a feature, and should not be prevented from compiling.

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This is not what safe bool idiom tries to solve? (artima.com/cppsource/safebool.html) –  dimba Feb 7 '11 at 16:14
2  
@dimba: Naturally safe bool idiom doesn't prevent using the value in purely boolean contexts. –  UncleBens Feb 7 '11 at 16:19
    
@UncleBens - indeed, changing x type in last line from bool to int causes to compilation error. –  dimba Feb 7 '11 at 16:26

If you're using optional then you need to be able to determine if it's set before using it. The way this is implemented is with the (effectively bool) conversion.

It doesn't in my mind follow that the user didn't want what's actually written there: They should know that it's an optional and that they're checking it for validity.

Since the conversion is a built in part of boost::optional I'm not aware of any way to directly remove it.

You could of course implement a wrapper class for your particular int need that provides just the parts of the optional interface that you want, possibly with an explicit function that checks validity.

Alternately you could always use template<class T> inline T const* get_pointer ( optional<T> const& opt ) ; or its non-const version when working with optionals to make it explicit what's happening.

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