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I have the following class declaration:

class DepthDescriptor
{
public:
    DepthDescriptor(DepthType depth);
    bool operator==(DepthDescriptor& type);
    bool operator>=(DepthDescriptor& type);
    bool operator<=(DepthDescriptor& type);
...
}

Why does the following line not perform an implicit conversion to the DepthDescriptor object so that the operator comparison can take place?

if (depth == Depth_8U)
{
...
}

Note that depth is a DepthDescriptor object, DepthType is an enum, and Depth_8U is one of the enum values. I was hoping that lines like the one above would first call the implicit constructor DepthDescriptor(DepthType depth) and then the appropriate operator, but I'm getting no operator "==" matches these operands.

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2 Answers 2

up vote 1 down vote accepted

Try

bool operator==(const DepthDescriptor& type) const;
bool operator>=(const DepthDescriptor& type) const;
bool operator<=(const DepthDescriptor& type) const;
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1  
Why not making the functions const as well? –  jogojapan Nov 19 '12 at 9:29
    
Better still try bool operator==(const DepthDescriptor& type) const; Or even better make these operators global functions, bool operator==(const DepthDescriptor& lhs, const DepthDescriptor& rhs) –  john Nov 19 '12 at 9:29
    
Yes, should make the functions const. –  qianfg Nov 19 '12 at 9:32
    
This worked... seems like I need to brush up on operators! –  Kristian D'Amato Nov 19 '12 at 9:43

To get the conversion to happen you should write global functions not member functions, and you should be const-correct. I.e.

bool operator==(const DepthDescriptor& lhs, const DepthDescriptor& rhs)
{
    ...
}

Conversions will not happen on the left hand side if you use member functions. Conversions may not happen in a standard conformant compiler unless you are const-correct.

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The above answer was correct, but I'd like to know why you said that the conversion wouldn't work. –  Kristian D'Amato Nov 19 '12 at 9:44
    
To automatically convert the compiler has to create a temporary DepthDescriptor object. It's a rule of C++ that you cannot bind a temporary object to a non-const reference. Not all compilers enforce this rule however. With the member function version of your operators x == y is in effect x.operator==(y). In this code C++ specifies different rules for what types are acceptable for x and y. In particular it will not do implicit conversions on x. The global function method is better because it is symmetric and the same rules (including implicit conversions) apply to x and y. –  john Nov 19 '12 at 11:38

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