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In the following I expected 13 to be printed.
I wanted to move arr (which is a pointer to the memory, where int values from array are stored, if i understand everything right) by the size of one array member, which is int.

Instead 45 is printed. So instead making one array-member-wide jump the 5th Array member is retrieved. Why?

int arr[] = {1,13,25,37,45,56};
int val = *( arr + 4 );         //moving the pointer by the sizeof(int)=4
std::cout << "Array Val: " << val << std::endl;
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3 Answers 3

up vote 6 down vote accepted

Your assumption is wrong. It moves the pointer 4 elements ahead, not 4 bytes ahead.

*(arr + 4) is like saying in that logic *(arr + 4 * sizeof (arr [0])).

The statement *(arr + 4) is equivalent to arr [4]. It does make for some neat syntax, though, as *(4 + arr) is equally valid, meaning so is 4 [arr].

Your behaviour could be achieved through the following example:

#include <iostream>

int main()
{
    int a[3] = {65,66,67};
    char *b = reinterpret_cast<char *>(a);
    std::cout << *(b + sizeof (int)); //prints 'B'
}

I wouldn't recommend using reinterpret_cast for this purpose though.

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so this is a syntax thing? (arr+x) accesses the array? How can I change the memory address then? –  Skip Apr 24 '12 at 22:12
    
The arr + x part is part of pointer arithmetic rules. arr + 1 advances to the next element of the type that arr points to. –  chris Apr 24 '12 at 22:15
    
aha - this I wanted to understand. And what happens, if the type of the pointer is void* ? –  Skip Apr 24 '12 at 22:16
1  
Why should that print B? There's no justification for it, and, on a big endian machine, it won't. –  jpalecek Apr 24 '12 at 22:25
1  
@jpalecek, that precise example prints B for me and doesn't give any warnings, but you're correct in saying that. I did recommend not to do it. –  chris Apr 24 '12 at 22:29

arr + 4 will give you 4 items on from the start address of the array, not 4 bytes. That's why you get 45 which is the zeroth item plus 4.

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It is performing pointer arithmetic. See this: http://www.eskimo.com/~scs/cclass/notes/sx10b.html

arr is your array and this decomposes to the first element arr[0] which will be 1, then you + 4 to it which moves the pointer by 4 elements arr[4] so it is now pointing to 45.

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So then it should be 5? Because 4 plus the first_array_element(which is 1) should be 5? –  Skip Apr 24 '12 at 22:15
    
@Skip No, your array is composed of ints, when you increment the pointer you are moving the pointer to the next element you are not adding 4 to the value of the first element int val = (*arr) + 4 ; this would produce 5 as you dereference the first element which is 1 and then add 4 what you are doing is incrementing the pointer by 4 positions –  EdChum Apr 24 '12 at 22:18

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