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Could someone explain this code? I don't understand line 3:

MyString MyString::operator+(const MyString &str)
{
    MyString ss(*this); //----> explain this part
    ss += str;
    return ss;
}

Thanks!

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5 Answers 5

up vote 11 down vote accepted

This code:

MyString ss(*this);

Says "declare a new variable of type MyString that's named ss, and initialize it as a copy of *this." Inside of a member function, this is a pointer to the receiver object (the object that the member function is acting on), so *this is a reference to the receiver object. Consequently, you can read this as "make a new MyString that's called ss and is a copy of the receiver object."

The idiom being used here is implementing operator + in terms of operator +=. The idea is to make a copy of the receiver object, use operator += to add the parameter to the copy, and then to return the copy. It's a widely-used trick that simplifies the implementation of freestanding operators given implementation of the corresponding compound assignment operator.

Hope this helps!

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The operator+ in question isn't freestanding, it's the member operator -- otherwise there'd be no this :-) –  Kerrek SB Aug 10 '11 at 22:18
    
Sorry, by "freestanding" I mean "not the compound assignment version." That probably wasn't the best terminology. :-) –  templatetypedef Aug 10 '11 at 22:19
    
@templatetypedef: "Non-mutating" :) –  GManNickG Aug 10 '11 at 23:32

This is an instance of the common code reuse technique to implement one operator in terms of another.

Suppose we have already defined a compound-plus operator:

class X
{
  X & operator+=(const X&);
};

This unary operator allows us to write a += b, it modifies a and returns a reference to itself. This is all fine and good. Now if we also want to provide a copying, binary plus opearator a + b, which returns a the new value by value and leaves both a and b unchanged, then we want to take advantage of the code we've already written for the compound operator. We do so by calling the unary operator on a temporary copy of a:

X X::operator+(const X & b) const { return X(*this) += b; }
                                           ^^^^^^^^
                                           temporary copy

This is exactly what your code does, only a bit more verbosely. You could as well have written return MyString(*this) += str;

There are other idioms with follow a similar spirit, such as implementing non-const access in terms of const access, copy-assign in terms of copy-construct and swap, and move-assign in terms of move-construct and swap. It always boils down to avoiding code duplication.

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It's a constructor for MyString that takes the value of the current object (of type MyString) as its argument.

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From what I can tell that is a copy constructor which creates a new MyString with the contents of the current MyString object.

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ss is a new string which gets constructed with a copy constructor from the original string.

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