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I need to implement an assignment operator for a class with a lot of members which I don't want to assign manually. Can I first make a shallow memory copy and then perform the necessary initializations?

class C
{
    public:
    C &operator=(const C &rhs)
    {
        if (&rhs == this)
            return *this;
        memcpy(this, &rhs, sizeof(C));
        Init(rhs);
        return *this;
    }

    .........
};

Thanks.

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I'm not sure, but you must check for self assignment first. e.g. if(this == &rhs) return *this; –  mcnicholls Feb 6 '12 at 17:05
3  
@mcnicholls: Well, the ideal way to implement = is by Copy and Swap Idiom. –  Alok Save Feb 6 '12 at 17:06
    
@Als: yes I do recall seeing this method and it does look like the best way to do it. –  mcnicholls Feb 6 '12 at 17:16

3 Answers 3

No. Unless the object has a POD type, this is undefined behavior. And a user defined assignment operator means that it's not a POD. And in practice, it could fail for a number of reasons.

One possible solution is to define a nested POD type with the data members, and simply assign it, e.g.:

class C
{
    struct Data { /* ... */ };
    Data myData;
public:
    C& operator=( C const& other )
    {
        myData = other.myData;
        return *this;
    }
};

Of course, that means that you need to constantly refer to each member as myData.x, rather than simply x.

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Well you could, but all your copied pointer members(if any) will then point to the same object and if that object goes out of scope, You would be left with a dangling pointer for all other objects which refer to it.

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You are trying to dereference a C++ reference using the * operator. Unless you have operator* defined for this class it's not gonna work.

I mean in line

memcpy(this, *rhs, sizeof(C));
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fixed, thank you. –  jackhab Feb 7 '12 at 7:35

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