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How can I get this function to change what x is pointing to in the following:

void test(const int *x)
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2  
You can't.​​​​​​​​​​​​ –  Chris Lutz Feb 15 '12 at 21:32
1  
You don't change the contents of x. You could cast away constness, but why would you want to do that? –  David Heffernan Feb 15 '12 at 21:33

4 Answers 4

up vote 3 down vote accepted
void test(const int *x)
{
    *((int *) x) = 42;
}

But if your object pointed at is const, you will invoke undefined behavior, like in:

const int bla = 58;
test(&bla);   // undefined behavior when the function is executed

This is ok:

int blop = 67;
test(&blop);

You rather want to change the prototype of your test function if you intend to modify the object pointed at.

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It's a pointer to a const int. You can't use it to change the value that it points to.

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Here's the thing: "change what x is pointing to" is ambiguous. Does he mean "...so that x points somewhere else" or "...so that the thing x points to has a new value"? –  Chris Lutz Feb 15 '12 at 21:34
void test(const int *x)

The const here specifies that the function is not allowed to modify the pointee. If you want to modify the pointee declare your function like this:

void test(int *x)

Of course, if you meant that you wanted x to point at a different object, then you can simply assign to x in the body of the function. But that does not sound very likely to be what you want to do.

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I don't have a C compiler, but this C++ should work the same:

void test(const int **x)
{
    static const int newx = 123;
    *x = &newx;
}

int main()
{
    const int Temp = 999;

    const int* y = &Temp; 

    test(&y);
}
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