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I'm learning the Cinder framework. There is a class Texture in this framework, and it can be used like this:

Texture myImage;
myImage.loadImage(/*...*/);
if(myImage)
{
    // draw the image.
}

I got confused about this, because myImage is an object. Using it as a condition doesn't make sense to me. I expected something like myImage.exist();. So I stepped through the code, and it turns out that Texture class has a conversion operator defined:

public:
    //@{
    //! Emulates shared_ptr-like behavior
    typedef std::shared_ptr<Obj> Texture::*unspecified_bool_type;
    // What is this???
    operator unspecified_bool_type() const { return ( mObj.get() == 0 ) ? 0 : &Texture::mObj; }
    void reset() { mObj.reset(); }
    //@}  

Obj is defined as:

protected:      
    struct Obj {
        Obj() : mWidth( -1 ), mHeight( -1 ), mCleanWidth( -1 ), mCleanHeight( -1 ), mInternalFormat( -1 ), mTextureID( 0 ), mFlipped( false ), mDeallocatorFunc( 0 ) {}
        Obj( int aWidth, int aHeight ) : mInternalFormat( -1 ), mWidth( aWidth ), mHeight( aHeight ), mCleanWidth( aWidth ), mCleanHeight( aHeight ), mFlipped( false ), mTextureID( 0 ), mDeallocatorFunc( 0 )  {}
        ~Obj();

        mutable GLint   mWidth, mHeight, mCleanWidth, mCleanHeight;
        float           mMaxU, mMaxV;
        mutable GLint   mInternalFormat;
        GLenum          mTarget;
        GLuint          mTextureID;
        bool            mDoNotDispose;
        bool            mFlipped;   
        void            (*mDeallocatorFunc)(void *refcon);
        void            *mDeallocatorRefcon;            
    };
    std::shared_ptr<Obj>        mObj;

I know that operator int() const can implictly change the Object to int, but how is unspecified_bool_type working? The debugger stops at operator unspecified_bool_type() const { return ( mObj.get() == 0 ) ? 0 : &Texture::mObj; } when if(myImage) is executing.

And I may be a little confused about the grammar here, what does

typedef std::shared_ptr<Obj> Texture::*unspecified_bool_type;

mean?

And does

void (*mDeallocatorFunc)(void *refcon); 

in Obj mean that mDeallocatorFunc is a member of Class Obj, a function pointer to a function with prototype: void xxx(void *)?

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1  
Looks like some incantation of the "safe bool idiom"... –  Kerrek SB Jan 10 '12 at 19:26
    
@KerrekSB I think I got it, it defines a conversion operator which can convert Texture to shared_ptr<Obj> and the rest of the checking is provided by shared_ptr<Obj>. But what does typedef std::shared_ptr<Obj> Texture::*unspecified_bool_type; mean?? is there any difference with typedef std::shared_ptr<Obj> unspecified_bool_type; ? I'm confused with this kind of gramma, especially the ::* could you help me out here? thank you very much. –  shengy Jan 10 '12 at 19:32
    
That thing in particular is a pointer-to-member (which isn't an ordinary pointer!), but beyond that I haven't read enough of the code. There are many popular ways to implement the SBI, so if you search a bit you might find a description that is very similar to your code... –  Kerrek SB Jan 10 '12 at 19:35
    
@KerrekSB so after typedef std::shared_ptr<Obj> Texture::*unspecified_bool_type; if I write unspecified_bool_type var; then var means a pointer to shared_ptr<Obj> and it must point to a member of Texture? –  shengy Jan 10 '12 at 19:39
    
@shengy : Specifically, given typedef std::shared_ptr<Obj> Texture::*unspecified_bool_type;, unspecified_bool_type is a pointer to a data member of Texture of type std::shared_ptr<Obj>. Returning a pointer of this type does not ever instantiate a new shared_ptr<>. –  ildjarn Jan 10 '12 at 21:36

1 Answer 1

up vote 4 down vote accepted

This is the safe bool idiom. It doesn't use simply operator bool() because implicit conversions can cause all kinds of trouble with that operator. So instead it uses a type that is implicitly convertible to bool (like a pointer to member) and that is the least dangerous possible.

Luckily this sort of hack is not required in C++11 because we can write explicit operator bool instead and not fall prey to implicit conversions.

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1  
Relevant: Is the safe-bool idiom obsolete in C++11? –  Xeo Jan 10 '12 at 23:41

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