Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Lets say I do something like this

int *array;
array = new int[10];

How is memory set up for this array? What type is array[0]? (a pointer? an int?)

share|improve this question
    
There are easy tests you can do to test the type of array[0]. – chris Nov 15 '12 at 1:32
    
Why'd this get downvoted? – Alex Nov 15 '12 at 1:40
up vote 2 down vote accepted

This code first allocates room for a pointer called array. This memory is allocated on the stack.

Next, it allocates a block of memory from the heap to hold 10 integers and assigns the address to array.

array[0] will refer to the first integer in the block of 10. The subscript makes it a value instead of a pointer.

And for God's sakes, start accepting some answers that people are giving you!

share|improve this answer

In this case, array[0] has type int.

The memory is pretty simply a pointer pointing to memory to hold 10 ints that's allocated somewhere on the free store (which translates mostly to: "we honestly don't care about its address, we just care that it's our memory and we can use it 'til we delete it").

Note that in this case, you're depending on an equivalence that was originally defined in C: that x[y] is equivalent to *(x+y). In this case, your x is a pointer, and addition to the pointer happens in increments of the size of the type that it points to, so when we use array[N], we get the Nth item in the memory pointed to by array.

One minor detail: you shouldn't do this -- probably ever. There's almost never a good reason to use new type[size] in C++. At one time we did because better alternatives (e.g., std::vector) weren't available yet -- but nowadays it's a lousy idea.

share|improve this answer

array[0], as an element of the array, is an int.

array has already been declared a pointer to an int.

In memory, the 'new' call allocates a single block of space to hold ten integers. 'array' is a pointer to the start of that block. array[0] is the first element. array[1] is the second, and so on.

share|improve this answer

How is memory set up for this array?

new int[10] will dynamically allocate enough memory from the free store to contain ten values of type int. It gives you a pointer to that memory, which you store in your array variable.

array itself is an automatic variable of pointer type; it's typically stored in a region of the stack that was allocated automatically for the current function call, and will be deallocated when the function returns.

Once you've finished with the memory, you must return it to the free store using delete [] array. Since it's easy to get that wrong, it's usually better to use RAII types such as smart pointers or containers to manage dynamic resources. In this case, std::vector<int> array(10) will give you an array of the same size, and will automatically delete it for you when it goes out of scope.

What type is array[0]?

array[0] is the first element of an array of int, so its type is int.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.