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why doesn't this work:

Snippet 1:

int *a = new int[6];
(*a)[0]=1;

while this is working

Snippet 2:

int myint = 0;
int *ptr = &myint;
*ptr=1;

I know that if i use a[0]=1 in snippet 1 it will work. But for me that makes no sense, cos for me it looks that a[0]=1 means: put value 1 to adress a[0]. In other words I put the value as the memory. Instead it makes more sense to use (*a)[0]=1 which means to me: put value 1 to the value field which a[0] points to.

Could anyone describe this discrepance?

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It may make more sense to you. But as the rest of the developer community will get confused every time they read your code it is probably not a good idea. Get used to the conventions used by the language and change your behavior to match. –  Crappy Experience Bye Jun 30 '10 at 21:36

4 Answers 4

up vote 1 down vote accepted

You should just be using *a not (*a)[0].

Remember 'a' is a pointer. A pointer is an address.

*a = a[0] or the first integer
*(a + 1) = a[1] or the second integer

'a' is not a pointer to an array. It is a pointer to an integer. So, *a does not hand an array back to you for the [ ] to operate on.

What is confusing you is that the address of an integer array is also the address of the first integer in that array. Remember to always keep in mind the type of what you are assigning on the left hand side.

Consider the following:

int x = 10;

This snippet declares an integer x and assigns it the value 10. Now consider this:

int *y = &x;

This snippet declares that y is a pointer to an integer and it assigns the address of x to y.

You could write it this way:

int x = 10;
int *y;

y = &x;

By the way, when you assign something to 'y' above it will simply take the data at that address and turn it into an integer. So, if you send it a to an array of char (8 bits or 1 byte each) and an integer is 32 bits (4 bytes) long on your system then it will just take the first four characters of the char array and convert the resulting 32 bit number into an int.

Tread carefully with pointers, there be dragons here.

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Snippet 1 should be:

int *a = new int[6];
a[0]=1;

This is because a[0] is equivalent to *(a+0).

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It is ambiguous if a pointer points to an array or to a single item.

(*a) dereferences the first (or possibly only) item.

a[0] dereferences the first item.

a[1] explicitly treats the pointer as an array, and dereferences the second item. It is up to the programmer to ensure that such an item exists.

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The indexing operator [] has a built-in * operator. So the first snippet is basically doing this:

int *a = new int[6];
*((*a) + 0) = 1;

So it dereferences once, which drops it to int, then adds zero (the index), then attempts to dereference again.

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