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Having to follow code -

    const int WEEKDAYS = 7;
    const int *pWeekdays = &WEEKDAYS;
    *((int*) pWeekdays) = 9;
    cout << WEEKDAYS << endl;

it give output 7 , that is - the line *((int*) pWeekdays) = 9; had no effect or thrown any errors .

Apparently it's like to do 7 = 9 so why no errors are being thrown ?

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8  
Undefined behaviour doesn't have to be checked or handled. If you were actually doing this in real code, C++ isn't going to make up for your stupidity. –  chris Aug 28 '12 at 17:40

2 Answers 2

up vote 6 down vote accepted

Casting away constness and thus accessing a const object mutably is simple undefined behaviour. Your program can do anything it wants, and no diagnostic is required.

Always remember that while it's true that a crashing program is buggy, a buggy program doesn't always crash. (Or as Socrates would have said, "not every cat is a fish".)


In C++ you should really never use C-style casts. If you had tried the more appropriate static_cast<int*>(pWeekdays), you would have got the correct diagnostic.

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"Casting away constness is simple undefined behaviour.". Not always, and not necessarily! –  Nawaz Aug 28 '12 at 17:41
    
@Nawaz: what now? :-) –  Kerrek SB Aug 28 '12 at 17:42
1  
I think s/thus/then :) –  GManNickG Aug 28 '12 at 17:49
1  
@Kerrek SB It's only UB if you then mutate the casted-to value actually. –  Mark B Aug 28 '12 at 17:49
    
@MarkB: Yes yes, I know - I've long since updated the answer :-) (Also note that we're not casting the value. We're casting a pointer to a variable.) –  Kerrek SB Aug 28 '12 at 17:50

You have defined WEEKDAYS as a constant and you are updating *pWeekdays i.e. value at address stored in pWeekdays so technically you are not updating the constant.

The reference WEEKDAYS or pWeekdays are not updated which you defined as a constant

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