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I have some questions about the internal workings of C++. I know for example that every member function of a class has an implied hidden parameter, which is the this-pointer (much in the same way Python does):

class Foo 
{
    Foo(const Foo& other);
};

// ... is actually...

class Foo
{
    Foo(Foo* this, const Foo& other);
};

Is it wrong of me to then assume then that the validity of the function does not directly depend on the validity of this (since it's just another parameter)? I mean, sure, if you try to access a member of the this-pointer, it better be valid, but the function will otherwise continue if this is deleted, right?

For example, what if I were to mess up with the this pointer and do something like what you see below? Is this undefined behavior, or is it defined by highly discouraged? (I'm asking out of pure curiosity.)

Foo:Foo(const Foo& other)
{
    delete this;
    this = &other;
}
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2 Answers 2

up vote 2 down vote accepted

You cannot assign to this - it is of type Foo * const. You can delete this; in certain circumstances, but it's rarely a good idea.

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What if I cast away the const-ness? –  Paul Manta Apr 19 '11 at 10:12
    
Undefined Behaviour. –  Erik Apr 19 '11 at 10:12
1  
@Paul: See 7.1.5.1/4 - In short, attempts to modify something that really is const produces UB –  Erik Apr 19 '11 at 10:18
1  
@Paul: Additionally, see 3.10 on lvalue/rvalue. this isn't a lvalue. –  Erik Apr 19 '11 at 10:22
3  
Several misunderstandings: the type of this is Foo*; no const. But this isn't a variable; it's a keyword, which represents an rvalue (which is why no const), like 42. You can't assign to this or modify it, anymore than you could assign to or modify 42. And delete this is a frequent idiom; in some applications, it's pretty much the only use of delete. –  James Kanze Apr 19 '11 at 12:03
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this is defined as,

Foo(Foo* const this, ...);

Casting away the constness is not not possible for this (special case). Compiler will give errors for the same. I have asked the similar question.

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