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Why won't the following C code compile? It seems like it should just change the pointers' address but it throws an error.

int x[10];
int y[10];
y=x;
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Looking at the compiler's error message usually helps in determining what goes wrong. In my case it complains that the left operand must be an l-value. –  Joey Mar 16 '10 at 22:48
    
Well I know how to fix it, I more so wanted to know "why" it was invalid. –  samoz Mar 16 '10 at 23:09

5 Answers 5

up vote 10 down vote accepted

x and y are arrays, not pointers. In C, arrays can't change size or location; only their contents can change. You can't assign arrays directly.

If you want a pointer to one of the arrays you can declare one like this.

int *z = x;

If you need to assign an array you can create a struct that contains an array. structs are assignable in C.

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In the past I've used C compilers that allowed you to change array pointers. It's nice to see it is now verboten. Gives me hope. –  T.E.D. Mar 16 '10 at 22:54

What pointers? You have two arrays. Arrays are not pointers. Pointers hold the address of a single variable in memory, while arrays are a contiguous collection of elements up to a specified size.

That said, arrays cannot be assigned. Conceivably, saying y = x could copy every element from x into y, but such a thing is dangerous (accidentally do an expensive operation with something as simple looking as an assignment). You can do it manually, though:

for (unsigned i = 0; i < 10; ++i)
    y[i] = x[i];
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y is statically allocated. You can't change where it points.

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Because an array is (has) a pointer value (rvalue) but is not a pointer variable (lvalue).

int a[10];
int *p;
p = a;   // OK
a = p;   // Compile Error
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To be obnoxiously pedantic, the type of an array expression is implicitly converted from "N-element array of T" to "pointer to T" (in most contexts). Arrays are not pointers, and do not have pointer values. –  John Bode Mar 17 '10 at 0:34
    
@John: I'm not even sure if there is a contradiction here. I was using an older vocabulary. –  Henk Holterman Mar 17 '10 at 11:40

y is not a "pointer", but a fixed array. You should consider it as a "constant of type int *", so you can't change a constant's value

Regards

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I like the way you think of an array! –  Shuo Mar 16 '10 at 22:51
    
It's not very precise to think of it that way, because &array gives you a pointer to an array, not a pointer-to-a-pointer (which is a completely different beast, and not interchangeable). –  caf Mar 16 '10 at 23:05
    
True. My analogy between arrays and constants is only a sort of "mnemonic trick". It fails if applied strictly: consider that, while "&array" is perfectly legal, "&1234" doesn't have any sense, and it's indeed illegal. –  Giuseppe Guerrini Mar 17 '10 at 8:14

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