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If we have an array[5], we know that arr == &arr[0] but what is &arr[2] = ?

Also, what does &arr return to us?

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2  
Language tag missing. Is this C? C++? PHP? ... –  K-ballo Oct 13 '11 at 23:40
    
I'm curious how it differs in C and C++ both.. –  Siddhartha Oct 14 '11 at 0:05
    
&arr doesn't "return" anything. It is not a function. –  Lightness Races in Orbit Oct 14 '11 at 0:08
    
@Siddhartha: It's the same in both. –  Swiss Oct 14 '11 at 0:10
    
@Siddhartha: They are the same thing in both C and C++. –  K-ballo Oct 14 '11 at 0:10

5 Answers 5

up vote 2 down vote accepted

Let's look at a simple example first:

int a;
a = 5;

In a sense the integer a has two values assoicated with it. The one you most likely think about first is the rvalue, which in this case is the number 5. There is also what is called an lvalue (pronounced "el value") which is the memory address the integer a is located at.

This is an important concept to grasp. At the end of the day everything is all about memory. We store code and variables in memory. The CPU executes instructions which are located in memory and it performs actions on data which is also in memory. It's all just memory. Nothing very complicated; if someone tries to scare you with pointers don't listen, it's all just memory :)

Alrighty so, in the case of an array we are dealing with a contiguious block of memory that is used for storing data of the same type:

int array[] = {0, 1, 1, 2, 3, 5, 8, 13, 21};

As you have already noted the name of the array refers to the memory location of the first element in the array (e.g. array == &array[0]). So in my example array above &array[2] would refer to the memory location (or lvalue) that contains the third element in the array.

To answer your other question &array is just another memory address, see if this code snippet helps clear up what it points to :)

#include <stdio.h>
#include <stdlib.h>

int array[] = {0, 1, 1, 2, 3, 5, 8, 13, 21};

int main(void) {
    printf("&array[2] is: %p\n", &array[2]);
    printf("&array[0] is: %p\n", &array[0]);
    printf("&array is: %14p\n", &array);
    exit(0);
}

% gcc test.c
% ./a.out
&array[2] is: 0x100001088
&array[0] is: 0x100001080
&array is:    0x100001080
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Ahhhh I always wondered what lvalue was...I always get an 'invalid lvalue assignment' error when I used '=' instead of '==' ..it makes sense now. I was aware that everything happens in memory.. Hmmm I wasn't sure if &array would indeed be a valid memory address, but I put this into codepad.org and you're right. I guess &array == &array[0] Also, what is I'm guessing %p gives the lvalue? if so, what does %14p do? Thx a ton :D –  Siddhartha Oct 14 '11 at 1:39
1  
%p is the format specifier to use when printing a memory address with the printf function. The number 14 tells printf to pad the output until it is at least 14 characters wide; take it out and see the difference in the output. I am guessing that you are reading a book on the C programming language and in a few chapters you will encounter information on the relationship between pointers and arrays. Once you read that the rest of the comments from the other posters may make more sense. Also, I highly recommend you read this document from Ted Jensen it will clear a lot up: mkurl.us/2YW –  paul Oct 14 '11 at 1:49

If we have an array[5], we know that arr = &arr[0] but what is &arr[2] = ?

In a C based language, &arr[0] is a pointer to the first element in the array while &arr[2] is a pointer to the third element in the array. Arrays decay into pointers to the first element, so in certain context array and &arr[0] are actually the same thing: a pointer to the first element.

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Ok thx...How bout &arr? what does that return? –  Siddhartha Oct 14 '11 at 1:28
    
@Siddhartha: &arr returns a pointer to an array. –  K-ballo Oct 14 '11 at 1:30
    
I thought just 'arr' did that? –  Siddhartha Oct 14 '11 at 1:32
    
@Siddhartha: arr decays to a pointer to the first element in the array. –  K-ballo Oct 14 '11 at 2:20
&arr[0] == arr + 0
&arr[1] == arr + 1
&arr[2] == arr + 2

and so on.

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In both C and C++, if T is a fundamental type, and you have an array T array[N], then array[i] is *(array+i), using the fact that the expression array decays to a pointer type in an expression.

Hope that helps.

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In c, the only difference between [] operator and the + operator is that the [] operator also dereferences the pointer. This means that arr[2] == *(arr + 2), and &arr[2] == &(*(arr + 2)) == arr + 2.

On a side note, this also means the fun interaction wherein you reference array indexes like index[array]: that is, arr[2] == 2[arr].

The more you know....

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