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constants and pointers in C

I have this little piece of code. I am using a gcc compiler:

#include <stdio.h>

int main()
{
    const int a=10;
    int *d;
    d=&a;
    *d=30;
    printf("%d %d\n",a,*d);
    return 0;
}

It gives a warning on compiling:

"assignment discards qualifiers from pointer target type"

But no error. The output is: 30 30

Then doesn't it defy the purpose of maintaining a const variable whose value is fixed throughout the program execution (please correct me if I am wrong)?

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marked as duplicate by Ed S., Daniel Fischer, Kevin, Stephen Canon, Jonathan Leffler Nov 4 '12 at 5:27

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Yet another reason to actually not ignore warnings. Your code is in no way guaranteed to work. In fact, I'd say you're lucky it doesn't crash and burn :) –  Joachim Isaksson Nov 3 '12 at 18:44
    
You are not allowed to assign a const int* value to a int* pointer. That would violate the rules of const-correctness. In fact, what you are doing is an error in C. C compilers traditionally report it as a mere "warning" to avoid breaking some old legacy code. –  Rahul Tripathi Nov 3 '12 at 18:45
1  
Note that the answer to the duplicate is a bit off per the standard, which does not speak of "readonly memory", only what behavior is defined and which is not (this is not). It's up to the compiler to decide where a is placed. Undefined behavior doesn't mean "an error will occur". That would be defined behavior. –  Ed S. Nov 3 '12 at 18:48
    
As @JoachimIsaksson said, it is undefined behavior. Please do enough research before asking questions on stackoverflow. –  CCoder Nov 3 '12 at 19:05
3  
It's undefined behavior because the assignment d=&a; violates a constraint. The compiler could (and IMHO should) have rejected the program rather than merely warning about it, but the standard only requires a "diagnostic" for any constraint violation, and a warning satisfies that requirement. You can use gcc -pedantic-errors to force gcc to treat constraint violations as fatal errors. –  Keith Thompson Nov 3 '12 at 19:55

3 Answers 3

const is not a guarantee. It's only a promise. Promises can be broken. The compiler warns when this happens, but is otherwise not required to prevent it, since there could be cases where bypassing the const-ness might be useful.

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The above behavior is undefined. As this example shows, you can get different values as well. Explanation for this output is - compilers optimize the code and replace const variables with their values. So we can see a difference when we do printf("%d %d %u %u\n",a,*d,&a,d); which would actually have been modified to optimize as printf("%d %d %u %u\n",10,*d,&a,d);

Do not rely on any of these outputs. Actual behavior is not defined by the standard.

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You shouldn't do that and the compiler is giving you that warning for a reason. However, C/C++ will let you do anything you want. It is up to you to write clean code.

You can reflect the constness of that value by using:

int const * d =  &a;    

Then, modifying what d points to will produce warnings and errors.

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