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I'm switching to GCC 4.6.1, and it starts to complain about code which works fine with GCC 4.4 and MSVC10. It seems that it doesn't want to convert between shared_ptr and bool when returning from a function like this:

class Class { shared_ptr<Somewhere> pointer_; };

bool Class::Function () const
{
    return pointer_;
}

using

return static_cast<bool> (pointer_);

everything works. What the heck is going on? This is with --std=cpp0x.

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Why the heck would you want to do this? –  Ed Heal Sep 28 '11 at 8:13
4  
To check if the pointer has been set. –  Anteru Sep 28 '11 at 8:20

2 Answers 2

up vote 24 down vote accepted

In C++11, shared_ptr has an explicit operator bool which means that a shared_ptr can't be implicitly converted to a bool.

This is to prevent some potentially pitfalls where a shared_ptr might accidentally be converted in arithmetic expressions and the similar situations.

Adding an explicit cast is a valid fix to your code.

You could also do return pointer_.get() != 0;, return pointer_.get(); or even return pointer_ != nullptr;.

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3  
Another way is the double-bang idiom: return !!pointer_;. –  Luc Danton Sep 28 '11 at 8:05
4  
@LucDanton: For no rational reason, I completely dislike that method but yes, it also works. –  Charles Bailey Sep 28 '11 at 8:09
    
To be quite honest I mentioned it because it preceded explicit conversions operators and contextual conversions. –  Luc Danton Sep 28 '11 at 8:12
    
@LucDanton If you like obfuscation, yes. What you'd really like to write is either return pointer != NULL; or return pointer.is_valid(); or something similar. Regretfully, neither Boost nor the standards committee decided to support this, so your stuck with return pointer.get() != NULL'. –  James Kanze Sep 28 '11 at 8:26

shared_ptr has an explicit bool conversion. It can be used in a conditional expression or can be explicitly converted to bool as you did with static_cast.

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