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Following is my code

const int i = 10;
cout<<i<<"\n";
int *ip = (int*)&i;
*ip = 20;
cout<<i<<"\n";

I was expecting output as 10 and 20.
But I am getting output as 10 and 10.

I am able to compile the program and I don't get any error at compile time or runtime but not getting the expected outcome. If I have removed the constness of the variable i why the new value is not assigned to it?

I would be grateful If somebody could explain whats happening and what can be done to achieve my expected result.

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4  
Modifying i is undefined behaviour. All you're doing is saying "Treat &i as a pointer to non-const data." Then, you stab the program in the back and modify the data it's pretending is non-const. Your cast should also be const_cast to make it explicit that you're treating it that way. –  chris Nov 29 '12 at 4:13
1  
You haven't removed the constness of i. You just lied to the compiler about &i's type. –  melpomene Nov 29 '12 at 4:14
1  
Furthermore, on some systems, const variables declared at global scope are located in read-only pages. Poking at one of these on such a system using your example will give you a segfault/access violation. –  Bukes Nov 29 '12 at 4:25
    
@chris: Cast or No Cast the result is Undefined Behavior in both cases. –  Alok Save Nov 29 '12 at 8:47
    
@Als, Indeed it is. Sorry if I was unclear in that regard. –  chris Nov 29 '12 at 8:49

1 Answer 1

up vote 12 down vote accepted

How to change the constness of a variable in C++?

You should never change the constness of an inherently const qualified variable!
An const qualified variable is declared with the aim that it should not be modified after it is initialized. By attempting to change the constness you break the contract with the compiler.

If you need to modify a variable, simply do not declare it as const.

Note that C++ provides const_cast to remove or add constness to a variable. But, while removing constness it should be used to remove constness off a reference/pointer to something that was not originally constant.


What is happening?

What is happening is Undefined Behavior.

You should not be changing the constness of an const qualified variable, If you do so through some pointer hackery what you get is Undefined behavior.

In case of undefined behavior the standard does not mandate compilers to provide a compile time diagnostic.Note though that some compilers may warn you if you compile with highest warning level.

Also, undefined behavior means that when you run the program anything can happen and the compiler might show you any result and it does not warrant an explanation.


Why the result?

In this case since i is constant probably the compiler inlines the const variable as a part of its optimization and hence the pointer hackery does not affect the value of i since it already inlined by compiler it simply puts the inlined value wherever i is encountered in the code.

Note that the compiler does so because you made an contract with the compiler,

Heres my i and it will never be changed throughout the lifetime of my program.

The compiler is free to apply whatever optimizations it can want as long as it adheres to the contract and it does so in this case.

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