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I am sure that the following code should not compile. But, in g++, it does compile! See it compile at .

The code:

#include <iostream>

using namespace std;

int main() {
    int x = 32 ;
    // note: if x is, instead, a const int, the code still compiles, 
    // but the output is "32".

    const int * ptr1 = & x ;

    *((int *)ptr1) = 64 ; // questionable cast
    cout << x ;           // result: "64"

Is g++ in error by compiling this?

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If you want to cast away constness (and you're sure its allowed) the idiomatic c++ way to do it is with const_cast<int*>(ptr1) - although the C cast will work too, as you've just seen. – Michael Anderson Dec 20 '11 at 2:41
This helpful to read: – Pubby Dec 20 '11 at 2:41

3 Answers 3

up vote 9 down vote accepted

No. According to §5.4.4 of the C++ standard, the casts that can be performed by a C-style cast are:

— a const_cast (5.2.11),
— a static_cast (5.2.9),
— a static_cast followed by a const_cast,
— a reinterpret_cast (5.2.10), or
— a reinterpret_cast followed by a const_cast

This is widely known as "casting away const-ness", and the compiler would be non-conformant to that part of the standard if it did not compile that code.

As ildjarn points out, modifying a const object via casting away constness is undefined behaviour. This program does not exhibit undefined behaviour because, although an object that was pointed to by the pointer-to-const, the object itself is not const (thanks R.Martinho and eharvest for correcting my bad reading).

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"No." - So g++ should have compiled the code? "compiler would be non-conformant to that part of the standard if it did not compile that code." - So g++ is conformant to that part of the standard? – Gavin Haynes Dec 20 '11 at 2:50
@noshenim your question was "Is g++ in error by compiling this?" to which I replied "No". So g++ should, and does, compile the code, and it conforms to that part of the standard. – Seth Carnegie Dec 20 '11 at 2:51
Noshenim, you asked contradictory questions. Any yes answer to your title question was a no answer to the body question. Please be more careful next time. – Rob Kennedy Dec 20 '11 at 3:12
@ildjarn ok, added a note about that. – Seth Carnegie Dec 20 '11 at 3:48
But the object being modified is not const. The object being modified is the int x = 32 ;. – R. Martinho Fernandes Dec 20 '11 at 4:14

No. g++ is not in error by compiling your code. the cast you have done is valid.

(int *)ptr1 is a c cast. the equivalent in c++ is const_cast<int*>(ptr1). the second style is clearer to read.

but, the need to do this cast (to modify a const variable) shows a problem in the design.

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The line *((int *)ptr1) = 64 is equivalent to *(const_cast<int*>(ptr1)) = 64 The const_cast is the first cast that is performed when you use the cast notation.

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