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I was browsing Qt sources, and noticed this

QUuid &operator=(const GUID &guid)
{
    *this = QUuid(guid);
    return *this;
}

I've never seen assignment to "this" before. What does assignment to "this" do?

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3 Answers 3

up vote 12 down vote accepted

That is not an assignment to this but to the object pointed by this. That will effectively call operator=( QUuid const & ) on the current object.

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or the implicit one (if no assignment operator is defined) –  smerlin Jan 19 '11 at 11:30
    
@smerlin: Whether the operator is explicitly defined by the user or implicitly defined by the compiler is more of an implementation detail, it is the same operator. –  David Rodríguez - dribeas Jan 19 '11 at 11:42
    
BTW, the code *this = QUuid(guid); is equivalent to the more explicit and cumbersome: this->operator=( QUuid(guid) )... not that this affects the answer in any way. –  David Rodríguez - dribeas Jan 19 '11 at 11:43

It just invokes QUuid &operator=(const QUuid& quUid);.

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'this' is simply a pointer to the object on which the current method is invoked. Changing the value behind 'this' (by dereferencing the pointer using '*this' and assigning another object) modifies the caller's object to become another one.

In your example, a caller of 'operator=' might do the following:

GUID guid = guid(...) ;
QUuid uid = guid ;

According to the definition of 'operator=' this action copy-converts 'guid' into a new object of type 'QUuid'.

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